An automated plasma effect generator cracking device
By designing an automated plasma effect generator cracking device, using the combination of brackets, crushing boxes, crushing components, screw conveyors and cracking reactors, the problem that traditional devices cannot achieve continuous cracking is solved, and the continuous transportation and cracking of materials is realized, which improves the degree of automation and efficiency of the equipment.
Patent Information
- Application Number
- CN202510251552.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-03-05
AI Technical Summary
Traditional plasma effect generator cracking devices require manual loading, and a continuous cracking reaction cannot be achieved.
An automated plasma effect generator cracking device is designed, including a bracket, a first crushing box, a first crushing assembly, a second crushing box, a second crushing assembly, a screw conveyor and a cracking reactor. Through the coordinated work of these components, continuous transport and cracking of materials are realized.
The continuous cracking of materials is achieved, the degree of automation of the equipment is improved, the demand for manual operation is reduced, and the continuity and efficiency of the cracking reaction is enhanced.
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Figure CN119746760B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of chemical equipment, and in particular to an automated plasma effect generator cracking device. Background Art
[0002] The pyrolysis equipment is a process that converts a sample macromolecule into another small molecule by generating heat energy. There are two types of small experimental pyrolysis reactors on the market: ultrasonic source and high-frequency electromagnetic generator heating. Both energy sources have the functions of breaking tissues, bacteria, viruses, spores and other cell structures, homogenizing, emulsifying, mixing, degassing, disintegrating and dispersing, leaching and extracting, accelerating reactions, etc., so they are widely used in laboratory research and corporate production in biology, medicine, chemistry, pharmaceuticals, food, cosmetics, environmental protection, etc.
[0003] In a conventional plasma effect generator cracking device, materials are usually loaded into a cracking reactor, and the materials are cracked by plasma effect in the cracking reactor. After the cracking is completed, the cracking products in the cracking reactor are taken out.
[0004] Traditional plasma effect generator cracking devices require manual loading and cannot achieve continuous cracking reactions. Summary of the invention
[0005] In order to enable continuous cracking, the present application provides an automated plasma effect generator cracking device.
[0006] The present application provides an automated plasma effect generator cracking device, which adopts the following technical solution:
[0007] An automated plasma effect generator cracking device comprises a support, a first crushing box, a first crushing assembly, a second crushing box, a second crushing assembly, a screw conveyor and a cracking reactor; the support is vertically arranged, the first crushing box is arranged on the support, and a feed pipe is obliquely arranged on one side, and a connecting pipe is arranged on the side of the first crushing box away from the feed pipe; the first crushing assembly is located on the first crushing box and is used for preliminary crushing of materials; the second crushing box is located on one side of the first crushing box and is arranged on the support, the second crushing box is connected to the connecting pipe, and a discharge pipe is arranged at the bottom; the second crushing assembly is located on the second crushing box and is used for crushing the materials after preliminary crushing again; the screw conveyor is located below the second crushing box and is arranged on the support, and the screw conveyor is connected to the discharge pipe; the cracking reactor is arranged on the support and at the bottom of the screw conveyor, and the cracking reactor is connected to the side of the screw conveyor away from the discharge pipe.
[0008] By adopting the above technical solution, when in use, the operator puts the material into the first crushing box through the feed pipe, the first crushing component initially crushes the material, the initially crushed material is transferred to the second crushing box through the connecting pipe, the second crushing component crushes the initially crushed material again, the re-crushed material falls into the screw conveyor through the feed pipe, the screw conveyor continuously transports the material to the cracking reactor, the material generates a plasma effect in the cracking reactor to crack the material, so that the cracking reactor can continuously crack the material.
[0009] Optionally, a supporting plate, a first spring and a first touch switch are provided in the feed pipe; the supporting plate is slidably provided in the feed pipe, and the sliding direction is perpendicular to the inclination direction of the feed pipe; the two ends of the first spring are respectively fixedly connected to the feed pipe and the supporting plate; the first touch switch is provided at the bottom of the feed pipe, and is used to control the operation of the first crushing assembly.
[0010] By adopting the above technical solution, when the material is fed through the feed pipe, the material falls onto the carrying plate, the material squeezes the carrying plate, the carrying plate squeezes the first spring, the first spring is in a compressed state, the carrying plate squeezes the first touch switch, the first touch switch controls the first crushing component to work, so that the first crushing component works after the material enters the first crushing box, thereby realizing automatic control of the first crushing component.
[0011] Optionally, the first crushing assembly includes an electric push rod, a driving telescopic rod and an airbag, the electric push rod is vertically arranged at the top of the first crushing box and is electrically connected to the first touch switch, a pressure plate is arranged on the movable end of the electric push rod, and the pressure plate is horizontally arranged in the first crushing box; the driving telescopic rod is horizontally arranged on the side of the first crushing box close to the feeding pipe, and the rodless cavity is filled with liquid, a push plate is arranged on the movable end of the driving telescopic rod, and the push plate is vertically arranged in the first crushing box; the airbag is located at the top of the first crushing box and is filled with liquid, and the airbag is connected to the rodless cavity of the driving telescopic rod through a pipe.
[0012] By adopting the above technical scheme, after the material enters the first crushing box, the first touch switch controls the electric push rod to work, the movable end of the electric push rod extends, the movable end of the electric push rod drives the pressure plate to move downward, the pressure plate squeezes the material, and the material is initially crushed. After the material is initially crushed, the movable end of the electric push rod contracts, the movable end of the electric push rod drives the pressure plate to move upward, the pressure plate squeezes the airbag, and the liquid in the airbag flows through the pipeline into the rodless cavity of the driving telescopic rod, the volume of the rodless cavity of the driving telescopic rod increases, the movable end of the driving telescopic rod extends, the movable end of the driving telescopic rod drives the push plate to move in a direction away from the fixed end of the driving telescopic rod, and the push plate pushes the initially crushed material into the second crushing box through the connecting pipe, so that the initially crushed material is automatically pushed into the second crushing box.
[0013] Optionally, a second touch switch is provided on a side of the first crushing box close to the connecting pipe, and the second touch switch is used to control the operation of the second crushing assembly.
[0014] By adopting the above technical solution, when the push plate pushes the initially crushed material to the second crushing box through the connecting pipe, the push plate squeezes the second touch switch, and the second touch switch controls the operation of the second crushing component, so that the second crushing component works after the initially crushed material enters the second crushing box, thereby realizing automatic control of the second crushing component.
[0015] Optionally, the second crushing assembly includes a motor, a rotating shaft and a crushing blade, the motor is vertically arranged at the top of the second crushing box and is electrically connected to the second touch switch; the rotating shaft is vertically arranged in the second crushing box and is fixedly connected to the output shaft of the motor, the crushing blade is horizontally arranged and fixedly connected to the rotating shaft, and multiple crushing blades are arranged circumferentially along the axis of the rotating shaft.
[0016] By adopting the above technical solution, after the initially crushed material enters the second crushing box, the second touch switch controls the motor to work, the output shaft of the motor rotates to drive the rotating shaft to rotate, the rotating shaft drives the crushing blade to rotate along the axis of the rotating shaft, and the crushing blade secondary crushes the initially crushed material, so that the material is not easily blocked when entering the screw conveyor.
[0017] Optionally, a filter screen plate is horizontally arranged in the second crushing box, and the filter screen plate is slidably connected to the second crushing box; a connecting plate is horizontally arranged in the second crushing box, and the connecting plate is located below the filter screen plate, and a second spring and a third touch switch are arranged on the connecting plate, and the two ends of the second spring are respectively fixedly connected to the filter screen plate and the connecting plate, and the third touch switch is arranged on the connecting plate, and the third touch switch is electrically connected to the screw conveyor.
[0018] By adopting the above technical scheme, after the initial crushing, the material enters the second crushing box, and the initial crushing material falls onto the filter screen plate, smaller pieces of material pass through the filter screen plate, and larger pieces of material remain above the filter screen plate. The filter screen plate is affected by the gravity of the material, and the filter screen plate slides downward, and the filter screen plate squeezes the second spring. The second spring is in a compressed state, and the filter screen plate squeezes the third touch switch. The third touch switch controls the operation of the screw conveyor, and the screw conveyor transports the material screened by the filter screen plate to the cracking reactor. The crushing blade crushes the larger pieces of material again, so that the material is not easily blocked when entering the screw conveyor.
[0019] Optionally, an exhaust pipe is provided at the top of the cracking reactor, and a pressure valve is provided on the exhaust pipe.
[0020] By adopting the above technical solution, when the material generates a plasma effect in the cracking reactor to crack the material, the temperature in the cracking reactor continues to rise, and the internal gas expands due to the heat. When the pressure valve detects that the pressure in the cracking reactor is high, the pressure valve opens, so that the gas in the cracking reactor can be discharged through the exhaust pipe, so that when the internal air pressure of the cracking reactor increases, the internal air pressure can be adjusted through the exhaust pipe.
[0021] Optionally, a waste gas treatment box is provided on the side of the cracking reactor away from the second crushing box, the waste gas treatment box is filled with a solid catalyst, the waste gas treatment box is connected to the exhaust pipe, and an exhaust pipe is provided on the side away from the exhaust pipe.
[0022] By adopting the above technical solution, when the gas in the cracking reactor is discharged through the exhaust pipe, the gas discharged from the cracking reactor passes through the exhaust gas treatment box, and the solid catalyst in the exhaust gas treatment box filters the gas, so that the harmful gas generated in the cracking process is filtered, and the filtered gas is discharged through the outlet pipe, so that it is not easy to cause environmental pollution during cracking.
[0023] Optionally, a control panel is provided on the bracket, and the control panel is electrically connected to the electric push rod, the motor and the screw conveyor respectively, and the control panel controls the electric push rod, the motor and the screw conveyor to close respectively.
[0024] By adopting the above technical solution, when the operator stops feeding materials, the operator controls the electric push rod, the motor and the screw conveyor to be closed in sequence through the control panel, making the closing of the entire equipment convenient and easy to operate.
[0025] In summary, the present application includes at least one of the following beneficial technical effects:
[0026] By arranging a primary crushing assembly, a secondary crushing assembly and a screw conveyor, the crushed material can be easily and continuously conveyed to the cracking reactor through the screw conveyor, so that the cracking reactor can continuously crack the material;
[0027] By arranging the exhaust pipe and the waste gas treatment box, the harmful gas in the cracking process of the cracking reactor can be easily treated and is not easy to cause environmental pollution. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 It is a schematic diagram of the structure of an embodiment of the present application;
[0029] Figure 2 is a cross-sectional view of an embodiment of the present application;
[0030] Figure 3 yes Figure 2 A partial enlarged view of the middle A;
[0031] Figure 4 yes Figure 2 A partial enlarged view of point B in the middle.
[0032] Description of reference numerals:
[0033] 1. Bracket; 11. Control panel;
[0034] 2. First crushing box; 21. Feeding pipe; 211. Loading plate; 212. First spring; 213. First touch switch; 22. Second touch switch; 23. Connecting pipe;
[0035] 3. First crushing assembly; 31. Electric push rod; 311. Pressing plate; 32. Driving telescopic rod; 321. Pushing plate; 33. Airbag;
[0036] 4. Second crushing box; 41. Discharging pipe; 42. Connecting plate; 421. Second spring; 422. Third touch switch; 43. Filter screen plate;
[0037] 5. Second crushing assembly; 51. Motor; 52. Rotating shaft; 53. Crushing blade;
[0038] 6. Screw conveyor;
[0039] 7. Cracking reactor; 71. Discharge pipe; 711. Solenoid valve; 72. Exhaust pipe; 721. Pressure valve;
[0040] 8. Waste gas treatment box; 81. Exhaust pipe. DETAILED DESCRIPTION
[0041] The following is combined with Figure 1-4 This application is described in further detail.
[0042] The present application embodiment discloses an automated plasma effect generator cracking device. Figure 1 , an automated plasma effect generator cracking device comprises a support 1, a first crushing box 2, a first crushing assembly 3, a second crushing box 4, a second crushing assembly 5, a screw conveyor 6, a cracking reactor 7 and a waste gas treatment box 8. The support 1 is vertically arranged, the first crushing box 2 is in a rectangular box shape and is vertically arranged, and the first crushing box 2 is fixedly arranged on the support 1. The first crushing assembly 3 is located on the first crushing box 2 and is used for preliminary crushing of the material. The second crushing box 4 is in a rectangular box shape and is vertically arranged. The second crushing box 4 is located on one side of the first crushing box 2 and is fixedly arranged on the support 1, and the second crushing box 4 is connected to the first crushing box 2. The second crushing assembly 5 is located on the second crushing box 4 and is used for crushing the material after preliminary crushing again. The screw conveyor 6 is horizontally arranged and located below the second crushing box 4. The screw conveyor 6 is arranged on the support 1 and is connected to the second crushing box 4. The cracking reactor 7 is arranged on the support 1 and is located at the bottom of the screw conveyor 6. The cracking reactor 7 is connected to the side of the screw conveyor 6 away from the second crushing box 4. The waste gas treatment box 8 is in a rectangular box shape and is vertically arranged. The waste gas treatment box 8 is filled with a solid catalyst. The waste gas treatment box 8 is connected to the top of the cracking reactor 7.
[0043] Reference Figure 1 , Figure 2 and Figure 3 A control panel 11 is arranged on the bracket 1. The control panel 11 is arranged vertically and fixedly connected to the bracket 1. The control panel 11 is electrically connected to the screw conveyor 6 and is used to control the closing of the equipment. A feed pipe 21 is connected to one side of the first crushing box 2. The feed pipe 21 is in a rectangular tube shape and is tilted downward from the side away from the first crushing box 2 to the side close to the first crushing box 2. A bearing plate 211, a first spring 212 and a first touch switch 213 are arranged in the feed pipe 21. The bearing plate 211 is in a rectangular plate shape and is located at the bottom of the feed pipe 21. The bearing plate 211 is slidably arranged in the feed pipe 21, and the sliding direction is perpendicular to the tilt direction of the feed pipe 21. The two ends of the first spring 212 are fixedly connected to the feed pipe 21 and the bearing plate 211 respectively. The first touch switch 213 is fixedly arranged at the bottom of the feed pipe 21. A second touch switch 22 is fixedly arranged in the first crushing box 2. The second touch switch 22 is located on the side of the first crushing box 2 away from the feed pipe 21. A connecting pipe 23 is connected to the side of the first crushing box 2 away from the feed pipe 21 . The connecting pipe 23 is in a rectangular tube shape and is arranged horizontally. The side of the connecting pipe 23 away from the first crushing box 2 is connected to the second crushing box 4 .
[0044] Reference Figure 1 , Figure 2 and Figure 3The first crushing assembly 3 includes an electric push rod 31, a driving telescopic rod 32 and an airbag 33. The electric push rod 31 is vertically arranged, and the fixed end is fixedly connected to the top of the first crushing box 2. The electric push rod 31 is electrically connected to the first touch switch 213 and the control panel 11. The movable end of the electric push rod 31 is inserted into the first crushing box 2 and slides along the vertical direction of the first crushing box 2. A pressing plate 311 is fixedly arranged on the movable end of the electric push rod 31. The pressing plate 311 is in the shape of a rectangular plate and is horizontally arranged. The driving telescopic rod 32 is horizontally arranged, and the fixed end is fixedly connected to the side of the first crushing box 2 close to the feed pipe 21. The movable end of the driving telescopic rod 32 is inserted into the first crushing box 2 and is slidably connected along the width direction of the first crushing box 2. The rodless cavity of the driving telescopic rod 32 is filled with liquid. A push plate 321 is fixedly arranged on the movable end of the driving telescopic rod 32. The push plate 321 is in the shape of a rectangular plate and is vertically arranged. The air bag 33 is horizontally arranged on the top of the first crushing box 2 and is filled with liquid. The air bag 33 is connected with the rodless cavity of the driving telescopic rod 32 through a pipeline.
[0045] During use, the operator puts the material into the first crushing box 2 through the feed pipe 21. When the material is put through the feed pipe 21, the material falls onto the bearing plate 211, the material squeezes the bearing plate 211, the bearing plate 211 squeezes the first spring 212, the first spring 212 is in a compressed state, the bearing plate 211 squeezes the first touch switch 213, the first touch switch 213 controls the electric push rod 31 to work, the active end of the electric push rod 31 extends, the active end of the electric push rod 31 drives the pressing plate 311 to move downward, the pressing plate 311 squeezes the material, so that the material is initially crushed, and after the material is initially crushed, The movable end of the electric push rod 31 contracts, and the movable end of the electric push rod 31 drives the pressure plate 311 to move upward. The pressure plate 311 squeezes the airbag 33, and the liquid in the airbag 33 flows through the pipeline to the rodless cavity of the driving telescopic rod 32. The volume of the rodless cavity of the driving telescopic rod 32 increases, and the movable end of the driving telescopic rod 32 extends. The movable end of the driving telescopic rod 32 drives the push plate 321 to move in a direction away from the fixed end of the driving telescopic rod 32, and the push plate 321 pushes the initially crushed material into the second crushing box 4 through the connecting pipe 23, so that the initially crushed material is automatically pushed into the second crushing box 4.
[0046] Reference Figure 2 and Figure 4The bottom end of the second crushing box 4 is connected with a discharge pipe 41, which is in a circular tube shape and is arranged vertically. The end of the discharge pipe 41 away from the second crushing box 4 is connected with the screw conveyor 6. A connecting plate 42 and a filter screen plate 43 are arranged in the second crushing box 4. The connecting plate 42 is in a rectangular plate shape and is arranged horizontally. The connecting plate 42 is fixedly arranged on the side of the second crushing box 4 away from the first crushing box 2. A second spring 421 is vertically arranged on the connecting plate 42, and the bottom end of the second spring 421 is fixedly connected to the connecting plate 42. A third touch switch 422 is fixedly arranged on the connecting plate 42, and the third touch switch 422 is electrically connected to the screw conveyor 6. The filter screen plate 43 is in a rectangular plate shape and is arranged horizontally. The filter screen plate 43 is located above the connecting plate 42. The filter screen plate 43 is slidably connected to the second crushing box 4 along the height direction of the second crushing box 4, and the filter screen plate 43 is fixedly connected to the end of the second spring 421 away from the connecting plate 42.
[0047] Reference Figure 1 and Figure 2 The second crushing assembly 5 includes a motor 51, a rotating shaft 52 and a crushing blade 53. The motor 51 is vertically arranged at the top of the second crushing box 4 and is electrically connected to the second touch switch 22 and the control panel 11. The rotating shaft 52 is in the shape of a circular rod and is vertically arranged in the second crushing box 4. The rotating shaft 52 is fixedly connected to the output shaft of the motor 51. The crushing blade 53 is in the shape of a rectangular plate and is arranged horizontally. The crushing blade 53 is fixedly connected to the rotating shaft 52. A plurality of crushing blades 53 are arranged circumferentially along the axis of the rotating shaft 52.
[0048] When the push plate 321 pushes the preliminarily crushed material to the second crushing box 4 through the connecting pipe 23, the push plate 321 squeezes the second touch switch 22, and the second touch switch 22 controls the motor 51 to work. The preliminarily crushed material falls to the filter screen plate 43, and smaller pieces of material pass through the filter screen plate 43, and larger pieces of material remain above the filter screen plate 43. The filter screen plate 43 is affected by the gravity of the material, and the filter screen plate 43 slides downward, and the filter screen plate 43 squeezes the second spring 421. The second spring 421 is in a compressed state, and the filter screen plate 43 squeezes the third touch switch 422. The third touch switch 422 controls the screw conveyor 6 to work, and the screw conveyor 6 transports the material screened by the filter screen plate 43 to the cracking reactor 7. The output shaft of the motor 51 rotates to drive the rotating shaft 52 to rotate, and the rotating shaft 52 drives the crushing blade 53 to rotate along the axis of the rotating shaft 52. The crushing blade 53 secondary crushes the preliminarily crushed material, so that the material is not easily blocked when entering the screw conveyor 6.
[0049] The bottom of the cracking reactor 7 is connected to a discharge pipe 71, which is in a circular tubular shape and is vertically arranged, and a solenoid valve 711 is installed on the discharge pipe 71. The top of the cracking reactor 7 is connected to an exhaust pipe 72, which is in a circular tubular shape, and one end away from the cracking reactor 7 is connected to the waste gas treatment box 8, and a pressure valve 721 is installed on the exhaust pipe 72. The end of the waste gas treatment box 8 away from the exhaust pipe 72 is connected to an outlet pipe 81, which is in a circular tubular shape and is horizontally arranged.
[0050] When the material generates a plasma effect in the cracking reactor 7 to crack the material, the temperature in the cracking reactor 7 continues to rise, and the internal gas expands due to the heat. When the pressure valve 721 detects that the pressure in the cracking reactor 7 is high, the pressure valve 721 opens, so that the gas in the cracking reactor 7 can be discharged through the exhaust pipe 72. The discharged gas passes through the exhaust gas treatment box 8. The solid catalyst in the exhaust gas treatment box 8 filters the gas, so that the harmful gas generated in the cracking process is filtered, and the filtered gas is discharged through the outlet pipe 81, so that it is not easy to cause environmental pollution during cracking.
[0051] The implementation principle of an automated plasma effect generator cracking device in the embodiment of the present application is:
[0052] When in use, the material is put in through the feed pipe 21, and the material falls on the carrying plate 211. The material squeezes the carrying plate 211, and the carrying plate 211 squeezes the first touch switch 213. The first touch switch 213 controls the electric push rod 31 to work, and the movable end of the electric push rod 31 drives the pressing plate 311 to move downward, and the pressing plate 311 squeezes the material, so that the material is initially crushed. After the material is initially crushed, the movable end of the electric push rod 31 drives the pressing plate 311 to move upward, and the pressing plate 311 squeezes the airbag 33. The liquid in the airbag 33 flows through the pipeline to the rodless cavity of the driving telescopic rod 32, and the movable end of the driving telescopic rod 32 extends. The movable end of the driving telescopic rod 32 drives the push plate 321 to move in a direction away from the fixed end of the driving telescopic rod 32. The push plate 321 pushes the initially crushed material into the second crushing box 4 through the connecting pipe 23, and the material falls to the filter screen plate 43. Smaller pieces of material pass through the filter screen plate 43, and larger pieces of material remain above the filter screen plate 43.
[0053] The filter screen plate 43 is affected by the gravity of the material, and the filter screen plate 43 squeezes the third touch switch 422. The third touch switch 422 controls the screw conveyor 6 to work. The screw conveyor 6 transports the material screened by the filter screen plate 43 to the cracking reactor 7. When the push plate 321 approaches the connecting pipe 23, the movable end of the telescopic rod 32 drives the push plate 321 to squeeze the second touch switch 22. The second touch switch 22 controls the motor 51 to work. The output shaft of the motor 51 rotates to drive the rotating shaft 52 to rotate. The rotating shaft 52 drives the crushing blade 53 to rotate along the axis of the rotating shaft 52. The crushing blade 53 crushes the material after the initial crushing for the second time, so that the material is not easily blocked when entering the screw conveyor 6. When the material generates plasma effect in the cracking reactor 7 to crack the material, the temperature in the cracking reactor 7 continues to rise. When the pressure valve 721 detects that the pressure in the cracking reactor 7 is high, the pressure valve 721 opens, so that the gas in the cracking reactor 7 can be discharged through the exhaust pipe 72. The discharged gas passes through the waste gas treatment box 8. The solid catalyst in the waste gas treatment box 8 filters the gas, so that the harmful gas generated in the cracking process is filtered, and the filtered gas is discharged through the outlet pipe 81. When the operator stops feeding the material, the operator controls the electric push rod 31, the motor 51 and the screw conveyor 6 to be closed in sequence through the control panel 11, so that the equipment can continuously crack the material. After the cracking work is completed, the equipment can be closed uniformly, so that the overall equipment is easy to operate.
[0054] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.
Claims
1. An automated plasma effect generator cracking device, characterized in that: The invention comprises a support (1), a first crushing box (2), a first crushing assembly (3), a second crushing box (4), a second crushing assembly (5), a screw conveyor (6) and a cracking reactor (7); the support (1) is arranged vertically, the first crushing box (2) is arranged on the support (1), and a feed pipe (21) is arranged obliquely on one side of the support (1); a connecting pipe (23) is arranged on the side of the first crushing box (2) away from the feed pipe (21); the first crushing assembly (3) is located on the first crushing box (2) and is used to perform initial crushing of the material. The second crushing box (4) is located on one side of the first crushing box (2) and is arranged on the bracket (1); the second crushing box (4) is connected to the connecting pipe (23) and a discharge pipe (41) is arranged at the bottom; the second crushing assembly (5) is located on the second crushing box (4) and is used to crush the material after the initial crushing; the screw conveyor (6) is located below the second crushing box (4) and is arranged on the bracket (1); the screw conveyor (6) is connected to the discharge pipe (41) The pyrolysis reactor (7) is arranged on the support (1) and is located at the bottom of the screw conveyor (6). The pyrolysis reactor (7) is connected to the side of the screw conveyor (6) away from the discharge pipe (41). The first crushing assembly (3) comprises an electric push rod (31), a driving telescopic rod (32) and an air bag (33). The electric push rod (31) is vertically arranged at the top of the first crushing box (2). A pressure plate (311) is arranged on the movable end of the electric push rod (31). The pressure plate (311) is horizontally arranged. The driving telescopic rod (32) is arranged horizontally on a side of the first crushing box (2) close to the feeding pipe (21), and the rodless cavity is filled with liquid. A push plate (321) is arranged on the movable end of the driving telescopic rod (32), and the push plate (321) is arranged vertically in the first crushing box (2). The airbag (33) is located at the top of the first crushing box (2) and is filled with liquid. The airbag (33) is connected to the rodless cavity of the driving telescopic rod (32) through a pipeline.
2. The automated plasma effect generator cracking device according to claim 1, characterized in that: A bearing plate (211), a first spring (212) and a first touch switch (213) are arranged in the feed pipe (21); the bearing plate (211) is slidably arranged in the feed pipe (21), and the sliding direction is perpendicular to the inclination direction of the feed pipe (21); the two ends of the first spring (212) are respectively fixedly connected to the feed pipe (21) and the bearing plate (211); the first touch switch (213) is arranged at the bottom of the feed pipe (21) and is used to control the operation of the first crushing assembly (3).
3. The automated plasma effect generator cracking device according to claim 2, characterized in that: The electric push rod (31) is electrically connected to the first touch switch (213).
4. The automated plasma effect generator cracking device according to claim 3, characterized in that: A second touch switch (22) is provided on a side of the first crushing box (2) close to the connecting pipe (23), and the second touch switch (22) is used to control the operation of the second crushing assembly (5).
5. The automated plasma effect generator cracking device according to claim 4, characterized in that: The second crushing assembly (5) comprises a motor (51), a rotating shaft (52) and a crushing blade (53); the motor (51) is vertically arranged at the top of the second crushing box (4) and is electrically connected to the second touch switch (22); the rotating shaft (52) is vertically arranged in the second crushing box (4) and is fixedly connected to the output shaft of the motor (51); the crushing blade (53) is horizontally arranged and fixedly connected to the rotating shaft (52); a plurality of crushing blades (53) are arranged circumferentially along the axis of the rotating shaft (52).
6. The automated plasma effect generator cracking device according to claim 5, characterized in that: A filter screen plate (43) is horizontally arranged in the second crushing box (4), and the filter screen plate (43) is slidably connected to the second crushing box (4); a connecting plate (42) is horizontally arranged in the second crushing box (4), and the connecting plate (42) is located below the filter screen plate (43); a second spring (421) and a third touch switch (422) are arranged on the connecting plate (42), and two ends of the second spring (421) are fixedly connected to the filter screen plate (43) and the connecting plate (42), respectively; the third touch switch (422) is arranged on the connecting plate (42), and the third touch switch (422) is electrically connected to the screw conveyor (6).
7. The automated plasma effect generator cracking device according to claim 1, characterized in that: An exhaust pipe (72) is provided at the top of the cracking reaction kettle (7), and a pressure valve (721) is provided on the exhaust pipe (72).
8. The automated plasma effect generator cracking device according to claim 7, characterized in that: A waste gas treatment box (8) is arranged on a side of the cracking reaction kettle (7) away from the second crushing box (4); the waste gas treatment box (8) is filled with a solid catalyst; the waste gas treatment box (8) is connected to the exhaust pipe (72), and an exhaust pipe (81) is arranged on a side away from the exhaust pipe (72).
9. The automated plasma effect generator cracking device according to claim 5, characterized in that: A control panel (11) is provided on the bracket (1), and the control panel (11) is electrically connected to the electric push rod (31), the motor (51), and the screw conveyor (6) respectively, and the control panel (11) controls the electric push rod (31), the motor (51), and the screw conveyor (6) to be turned off respectively.
Citation Information
Patent Citations
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