Waste treatment apparatus for chemical reaction vessels
The problem of decreased filtration efficiency in chemical reactor waste treatment equipment has been solved by using a rotating interceptor cotton plate and a backflushing system, achieving continuous interception and efficient cleaning, and adapting to the impurity treatment needs of various environments.
Patent Information
- Application Number
- CN202511499470.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-20
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2045-10-20
AI Technical Summary
In existing waste treatment equipment for chemical reactors, the fixed interception structure causes the filtration effect to decrease as the amount of waste accumulates, lacks continuous interception and recovery functions, and makes it inconvenient to clean up impurities.
It employs a rotating intercepting cotton plate and a backflushing system. By switching motors to drive the intercepting cotton plate to rotate for continuous interception, and using an intake fan to backflush and remove particles, it combines activated carbon adsorption and a filter screen to achieve dynamic interception and active cleaning.
It maintains a stable interception effect, achieves continuous interception and targeted recovery of impurities, avoids impurity accumulation and equipment blockage, and adapts to the particle cleaning needs of different environments.
Smart Images

Figure CN120960807B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of waste treatment, in particular to a waste treatment equipment for a chemical reaction kettle. BACKGROUND
[0002] When a reaction kettle is used to prepare chemical products, waste water will be produced due to purification and other steps, which is harmful and inconvenient to package and treat, and needs to be evaporated to water and then the mud block is wrapped and stored. During the evaporation process, some chemical particles will rise with the airflow and need to be intercepted and collected.
[0003] The current treatment equipment uses a fixed interception structure for continuous interception, which will reduce the filtering effect as the accumulated amount increases, which is not conducive to continuously maintaining the filtering effect, and lacks the function of continuously intercepting and recovering and cleaning the particles in the steam. SUMMARY
[0004] Therefore, the present application provides a waste treatment equipment for a chemical reaction kettle to solve the above problems in the prior art.
[0005] The present application provides a waste treatment equipment for a chemical reaction kettle, which specifically comprises: an evaporator, the top of the evaporator is integrally provided with an exhaust pipeline, the rear upper portion of the exhaust pipeline is provided with a pipeline connected with an interceptor; the interceptor is a vertically arranged disc-shaped structure, a switching motor is fixedly arranged at the rear side of the interceptor, a circular intercepting cotton plate is rotatably arranged in the interceptor, and the switching motor is fixedly connected with the middle of the intercepting cotton plate; a waste particle pipe is fixedly connected to the front lower portion of the interceptor; a heat exchanger, which is an integrated structure with channels staggered in the up-down and front-rear directions; the upper and lower ends and the front side of the heat exchanger are fixedly provided with connecting hoppers, the upper connecting hopper is connected by a pipeline to the rear upper portion of the interceptor, and the front connecting hopper is connected by a pipeline to the rear lower portion of the interceptor; the lower connecting hopper is connected by a pipeline to an adsorption bin; a containing cylinder, which is located inside the adsorption bin but not attached to the inner wall of the adsorption bin, the bottom of the containing cylinder is a hexagonal support structure, a hanging shaft is fixedly arranged at the top middle of the hexagonal support structure, the hanging shaft penetrates through the top middle of the adsorption bin and is positioned and installed in cooperation with a conical ball bearing; a transmission motor is fixedly arranged at the top of the adsorption bin, and the top end of the hanging shaft is in transmission connection with the bevel gear of the transmission motor; a moving circular support, which can be attached to the bottom of the evaporator, and a rubber sealing ring is fixedly arranged at the bottom of the evaporator.
[0006] Optionally, four groups of support frames are fixedly arranged on the upper portion of the evaporator, and the height of the support frame is twice the height of the evaporator; a lifting channel is integrally connected to the upper front end of the evaporator, and an upwardly inclined input branch pipe is integrally arranged at the lower front end of the lifting channel; a spiral propeller is rotatably arranged in the lifting channel, a lifting motor is fixedly arranged at the top of the lifting channel, and the lifting motor is in transmission connection with the spiral propeller.
[0007] Optionally, the inside of the evaporator is fixedly provided with an inner conical ring; the inner wall of the evaporator below the inner conical ring is fixedly provided with a heat insulation ring, and the inner arc surface of the heat insulation ring is fixedly provided with an electric resistance heater.
[0008] Optionally, the side of the support frame close to the evaporator is slidably provided with a lifter matched with a guide rail; the side of the support frame close to the evaporator is rotatably provided with a vertical lead screw, and the vertical lead screw is threadedly connected with the lifter; the top of the evaporator is rotatably provided with four groups of linkage shafts, the top of the vertical lead screw is provided with a bevel gear transmission connection with the linkage shafts; the top of the evaporator is fixedly provided with a driving motor, and the driving motor is provided with a speed reducer transmission connection with one group of linkage shafts.
[0009] Optionally, the top of the exhaust pipeline is fixedly provided with a stirring motor, the rotor end of the stirring motor is provided with a rotating rod connected with a stirring comb, and the stirring comb is located in the inside of the evaporator.
[0010] Optionally, the rear end of the inside of the evaporator is fixedly provided with a gas feeding device, and two groups of air inlet fans driven by motors are rotatably arranged in the gas feeding device.
[0011] Optionally, the bottom of the adsorption bin is connected with an output pipe; the rear side of the adsorption bin is fixedly provided with a waste discharge pipe, the top of the waste discharge pipe is in a funnel structure; and the rear side of the adsorption bin is provided with a dismounting hole.
[0012] Optionally, the six-sided support structure of the containing cylinder is provided with a discharge plug through thread connection, the discharge plug can be moved to align above the funnel structure of the waste discharge pipe; the lower six-sided support structure of the containing cylinder is fixedly provided with an intercepting mesh pad, and the containing cylinder is filled with activated carbon particles.
[0013] Optionally, the bottom of the moving circular support is provided with a cross-shaped butt joint groove, the butt joint groove can be fitted and clamped on the outside of the lifter, and the butt joint surface sides of the lifter and the butt joint groove are rounded; the top of the moving circular support is fixedly provided with an enclosure, and the inner diameter of the enclosure is consistent with the inner diameter of the inner conical ring.
[0014] The beneficial effects are as follows:
[0015] The problem of attenuation of filtering effect of the fixed interception structure is solved, and stable interception capability is maintained; the existing equipment fixed interception structure is prone to reduce the filtering effect due to particle accumulation, while the equipment rotates the interception cotton board driven by the switching motor to realize continuous interception, and is matched with a backflushing system, the particles intercepted can be discharged through air backflushing by starting the air inlet fan to avoid impurity accumulation; from the aspects of dynamic interception and active cleaning, the problem that the filtering effect decreases with the use time is effectively solved, and the stable interception efficiency is maintained for a long time.
[0016] To address the shortcomings of existing equipment in continuously intercepting and recovering impurities, this device utilizes a rotating interception mechanism with a cotton plate to continuously capture large particulate impurities in steam. Simultaneously, particles discharged during backflushing can be directly collected through equipment connected to the waste particle pipe, forming a closed-loop process of "interception-temporary storage-discharge-recovery." Compared to fixed structures that can only passively intercept and are difficult to continuously process, this device achieves continuous interception and targeted recovery of impurities, preventing particles from escaping with steam or clogging the equipment.
[0017] This device offers an efficient particle cleaning solution that adapts to different usage scenarios. Existing equipment lacks targeted particle cleaning functions, but this device's backflushing system can actively remove particles from the interceptor cotton plate. It also supports the installation of a filter screen on the outside of the air supply device (to deal with outdoor or poor air quality scenarios), solving the particle cleaning problem from two dimensions: "internal backflushing cleaning + external air intake filtration". This ensures the cleanliness of the internal interception components of the device and allows for flexible adjustment of the filtration strategy according to the usage environment, avoiding interference from external air particles on the cleaning effect. Attached Figure Description
[0018] Figure 1 A schematic diagram of the overall structure of an embodiment of the present invention is shown;
[0019] Figure 2 A schematic diagram of the tilting structure of an embodiment of the present invention is shown;
[0020] Figure 3 A three-dimensional disassembly diagram of an embodiment of the present invention is shown;
[0021] Figure 4 A cross-sectional side-tilt structural schematic diagram of an embodiment of the present invention is shown;
[0022] Figure 5 A schematic diagram of the side-tilt disassembly structure of the evaporator in an embodiment of the present invention is shown;
[0023] Figure 6 A three-dimensional cross-sectional view of the adsorption chamber in an embodiment of the present invention is shown;
[0024] Figure 7 An embodiment of the present invention is shown. Figure 6 Another structural diagram from a different angle;
[0025] Figure 8 A three-dimensional structural schematic diagram of the movable circular support in an embodiment of the present invention is shown.
[0026] List of reference numerals in the attached diagram:
[0027] 1, evaporator; 2, interceptor; 3, heat exchanger; 4, air supply device; 5, adsorption bin; 6, containing cylinder; 7, transmission motor; 8, moving round support; 101, support frame; 102, lifting channel; 103, input branch pipe; 104, spiral propeller; 105, lifting motor; 106, inner conical ring; 107, heat insulation ring; 108, resistance heater; 109, lifter; 110, vertical lead screw; 111, linkage shaft; 112, drive motor; 113, exhaust pipeline; 114, stirring motor; 115, stirring comb; 201, switching motor; 202, intercepting cotton board; 203, waste particle pipe; 301, connecting hopper; 401, air inlet fan; 501, output pipe; 502, waste discharge pipe; 503, dismounting hole; 601, hanging shaft; 602, discharge plug; 801, butt joint groove; 802, fence. DETAILED DESCRIPTION
[0028] In order to make the purpose, scheme and advantages of the technical scheme of the present application clearer, the technical scheme of the present application embodiment will be described clearly and completely below in combination with the drawings of the specific embodiments of the present application.
[0029] Embodiment 1: please refer to the drawings in the specification, Figures 1 to 8 as shown:
[0030] The present application proposes a waste treatment equipment for chemical reaction kettle, comprising: an evaporator 1, an exhaust pipeline 113 is integrally arranged on the top of the evaporator 1, a pipeline is connected to the rear upper side of the exhaust pipeline 113 and an interceptor 2 is arranged thereon; the interceptor 2 is a vertically arranged disc-shaped structure, a switching motor 201 is fixedly arranged on the rear side of the interceptor 2, a circular intercepting cotton board 202 is rotatably arranged in the interceptor 2, and the switching motor 201 is fixedly connected to the middle of the intercepting cotton board 202; a waste particle pipe 203 is fixedly connected to the front lower side of the interceptor 2; a heat exchanger 3 is an integrated structure with channels staggered in the up-down and front-rear directions; connecting hoppers 301 are fixedly arranged on the upper and lower ends and the front side of the heat exchanger 3, the upper connecting hoppers 301 are connected to the rear upper side of the interceptor 2 through a pipeline, and the front connecting hoppers 301 are connected to the rear lower side of the interceptor 2 through a pipeline; an adsorption bin 5 is connected to the lower connecting hoppers 301 through a pipeline; a containing cylinder 6 is arranged in the adsorption bin 5 but not attached to the inner wall of the adsorption bin 5, the bottom of the containing cylinder 6 is a hexagonal support structure, a hanging shaft 601 is fixedly arranged on the top middle of the hexagonal support structure, and the hanging shaft 601 penetrates through the top middle of the adsorption bin 5 and is positioned and installed in cooperation with a conical ball bearing; a transmission motor 7 is fixedly arranged on the top of the adsorption bin 5, and the top end of the hanging shaft 601 is in bevel gear transmission connection with the transmission motor 7; a moving round support 8 can be attached to the bottom of the evaporator 1, and a rubber sealing ring is fixedly arranged on the bottom of the evaporator 1.
[0031] The outer part of the evaporimeter 1 is fixed with four groups of support frames 101, the height of the support frame 101 is twice the height of the evaporimeter 1; the front end of the evaporimeter 1 is integrally connected with a lifting channel 102, the front end of the lifting channel 102 is integrally provided with an upwardly inclined input branch pipe 103; the inside of the lifting channel 102 is rotatably provided with a spiral propeller 104, the top of the lifting channel 102 is fixedly provided with a lifting motor 105, and the lifting motor 105 is in transmission connection with the spiral propeller 104.
[0032] The inside of the evaporimeter 1 is fixedly provided with an inner conical ring 106; the inner wall of the evaporimeter 1 below the inner conical ring 106 is fixedly provided with a heat insulation ring 107, and the inner arc surface of the heat insulation ring 107 is fixedly provided with a resistance heater 108.
[0033] The side of the support frame 101 close to the evaporimeter 1 is slidably provided with a lifter 109 matched with a guide rail; the side of the support frame 101 close to the evaporimeter 1 is rotatably provided with a vertical lead screw 110, and the vertical lead screw 110 is in threaded connection with the lifter 109; the top of the evaporimeter 1 is rotatably provided with four groups of linkage shafts 111, the linkage shaft 111 is in bevel gear transmission connection with the top of the vertical lead screw 110; the top of the evaporimeter 1 is fixedly provided with a driving motor 112, and the driving motor 112 is in reducer transmission connection with one group of linkage shafts 111.
[0034] The top of the exhaust pipeline 113 is fixedly provided with a stirring motor 114, the rotor end of the stirring motor 114 is provided with a rotating rod connected with a stirring comb 115, and the stirring comb 115 is located in the inside of the evaporimeter 1.
[0035] The rear end of the inside of the evaporimeter 1 is fixedly provided with a gas feeding device 4, and the inside of the gas feeding device 4 is rotatably provided with two groups of air inlet fans 401 driven by motors.
[0036] The bottom of the adsorption bin 5 is connected with an output pipe 501; the rear side of the adsorption bin 5 is fixedly provided with a waste discharge pipe 502, and the top of the waste discharge pipe 502 is in a funnel structure; the rear side of the adsorption bin 5 is provided with a dismounting hole 503.
[0037] The six-side support frame structure of the containing cylinder 6 is provided with a discharge plug 602 through threaded connection, the discharge plug 602 can be moved to align above the funnel structure of the waste discharge pipe 502; the interval of the six-side support frame structure below the containing cylinder 6 is fixedly provided with an intercepting mesh pad, and the inside of the containing cylinder 6 is filled with activated carbon particles.
[0038] The bottom of the mobile circular support 8 is provided with a cross-shaped docking groove 801, which can be fitted in the outer part of the lifting device 109, and the docking surfaces of the lifting device 109 and the docking groove 801 are rounded; the top of the mobile circular support 8 is fixedly provided with a fence 802, and the inner diameter of the fence 802 is consistent with the inner diameter of the inner conical ring 106.
[0039] First, connect the input branch pipe 103 with the discharge valve of the reaction kettle; when the reaction kettle discharges waste, the waste will flow into the input branch pipe 103 naturally; at this time, start the lifting motor 105, which will drive the spiral propeller 104 to rotate, complete the lifting of the waste in the lifting channel 102, and finally transport the waste to the inside of the evaporator 1 and fall into the space composed of the mobile circular support 8 and the fence 802;
[0040] After the waste enters the fence 802, start the stirring motor 114, which drives the stirring comb 115 to rotate and uniformly stirs the waste; then, power on the resistance heater 108, which will heat the waste in the fence 802, promoting the rapid evaporation of the moisture in the waste; after the heating treatment, the waste will condense into a mud block, greatly reducing the difficulty of subsequent treatment;
[0041] Steam flow path: the steam generated by evaporation will rise through the exhaust pipe 113, pass through the interceptor 2 and the interception cotton board 202 in turn, and then pass through the heat exchanger 3 from top to bottom, and finally enter the containing cylinder 6;
[0042] Particle interception and cleaning: the interception cotton board 202 can intercept larger floating particles, and the start of the switching motor 201 can drive the interception cotton board 202 to rotate, achieving continuous interception; to avoid a decrease in interception effect, start the air inlet fan 401, and indoor air will be discharged through the air supply device 4 and the heat exchanger 3, and the particles on the interception cotton board 202 will be discharged in the opposite direction through backflushing; connecting a collection or treatment device to the waste particle pipe 203 can complete particle recovery while maintaining the interception efficiency of the interception cotton board 202;
[0043] If used outdoors or in an environment with poor air quality, a filter screen cover can be installed outside the air supply device 4 to intercept particles in the air;
[0044] When the air passes through the heat exchanger 3, it will play a wind cooling role, cooling the steam passing through the heat exchanger 3 to a gas-liquid mixed state; then the gas-liquid mixture enters the adsorption bin 5 and falls into the containing cylinder 6, passing through the activated carbon particles preloaded in the cylinder, and the fine particles are intercepted, and the condensed water penetrates and is discharged from the output pipe 501;
[0045] During this period, the transmission motor 7 drives the hanging shaft 601 to rotate through bevel gears, ensuring uniform adsorption.
[0046] Example 2: replacement of activated carbon, after long-term use of the device, move the discharge plug 602 above the exhaust pipe 502, the operator removes the discharge plug 602 through the disassembly hole 503, activated carbon particles will be discharged from the exhaust pipe 502; if not completely, the top circular cover plate of the adsorption chamber 5 can be disassembled and cleaned with tools; then install a new discharge plug 602 and fill new activated carbon, the device can be restored to use.
[0047] Example 3: moving and transporting, the bottom of the moving circular support 8 is provided with four groups of universal wheels, and a pull rod is arranged on the side, so that the moving circular support 8 is convenient to move; after evaporation is completed, the driving motor 112 is started to drive the linkage shaft 111 to rotate, the four groups of linkage shafts 111 and the vertical lead screw 110 are synchronously rotated, the lifter 109 is lowered through threaded transmission, and the moving circular support 8 is synchronously lowered; at this time, the moving circular support 8 can be directly used as a transportation device to transport the mud-shaped chemical to a designated place for treatment, and the device can be started again after the new moving circular support 8 is replaced;
[0048] The new moving circular support 8 is moved below the evaporator 1, the driving motor 112 is controlled to be reversed, the lifter 109 is lifted and clamped into the butt joint groove 801, the moving circular support 8 is driven to rise, and the moving circular support 8 is matched and clamped with the bottom of the evaporator 1 to form a closed space; after the discharge valve of the reaction kettle is closed, the exhaust pipeline 113 becomes the only steam flow path, and the stable steam flow is ensured.
[0049] The working process of the reaction kettle does not conflict with the operation of the waste treatment device, and the two can be operated synchronously, and the efficiency of the overall process flow is not affected.
[0050] The specific use mode and effect of the embodiment are as follows: in the embodiment, when the input branch pipe 103 is connected to the discharge valve of the reaction kettle, the waste is introduced into the input branch pipe 103 when the reaction kettle discharges waste, the lifting motor 105 is started to drive the screw propeller 104 to rotate, the waste is lifted in the lifting channel 102 and is conveyed to the inside of the evaporator 1 and falls into the moving circular support 8 and the surrounding fence 802;
[0051] The stirring motor 114 is started to drive the stirring comb 115 to rotate to stir the waste, the waste is uniformly stirred, then the resistance heater 108 is powered to heat, the waste in the surrounding fence 802 is heated, the water in the waste is quickly evaporated, and the waste becomes mud-shaped for convenient treatment;
[0052] The steam rises through the exhaust pipeline 113, passes through the interceptor 2 and the interception cotton board 202, and passes through the heat exchanger 3 from top to bottom and is introduced into the containing cylinder 6;
[0053] The interception cotton board 202 can intercept large-sized and easily floating particles. The interception cotton board 202 is rotated by starting the switching motor 201, so that the interception can be continuously performed. In order to prevent the interception effect from being reduced, the air inlet fan 401 is started to pass indoor air through the air feeding device 4 and the heat exchanger 3, and the particles intercepted by the interception cotton board 202 are discharged in a reverse direction, so that the particles are discharged through back flushing. The interception effect of the interception cotton board 202 can be maintained. If the device is used outdoors or in a place with poor air quality, a filter screen cover can be installed outside the air feeding device 4 to intercept air particles.
[0054] During the process of passing air through the heat exchanger 3, the air cooling effect is provided to cool the steam passing through the heat exchanger 3, so that the steam is condensed and enters the adsorption bin 5 in a gas-liquid mixed state, and falls into the containing cylinder 6 to be adsorbed by the activated carbon particles pre-loaded in the containing cylinder 6, so that fine particles are intercepted, and the condensed water penetrates and falls, and is discharged from the output pipe 501. The transmission motor 7 drives the hanger shaft 601 to rotate through bevel gears, so that the containing cylinder 6 continuously rotates to maintain uniform adsorption.
[0055] After long-time adsorption, the discharge plug 602 is moved above the waste discharge pipe 502, the discharge plug 602 is removed through the disassembly hole 503, the activated carbon particles are discharged from the waste discharge pipe 502, the circular cover plate at the top of the adsorption bin 5 is disassembled, a tool is inserted into the adsorption bin 5 to assist in discharging the activated carbon, and then the discharge plug 602 is installed and new activated carbon is filled to continue use.
[0056] Four groups of universal wheels are arranged at the bottom of the moving circular support 8, and pull rods are arranged at the side of the moving circular support 8 to facilitate movement. After evaporation is completed, the driving motor 112 is started to drive the linkage shaft 111 to rotate, the four groups of linkage shafts 111 rotate synchronously, and the vertical lead screw 110 also rotates synchronously, so that the lifter 109 is driven to descend through screw transmission, and then the moving circular support 8 also descends synchronously, and is placed down. The moving circular support 8 is used as a transport device to directly collect and process the mud-shaped chemicals, and a new moving circular support 8 can be replaced for work again.
[0057] The moving circular support 8 is moved below the evaporator 1, the driving motor 112 is controlled to reverse, the lifter 109 is lifted, the lifter 109 is clamped into the butt joint groove 801, the moving circular support 8 is lifted, the moving circular support 8 is clamped to the bottom of the evaporator 1, and a closed space is formed, so that the process can be performed again. After the discharge valve of the reaction kettle is closed, the exhaust pipe 113 is the only movable position of the steam, so that the steam flow direction is ensured.
[0058] The working time of the reaction kettle does not conflict with the working time of the device, and the two can be operated synchronously without affecting the efficiency of the process flow.
Claims
1. Waste treatment equipment for chemical reaction vessels, characterized in that, include: Evaporator (1), the top of the evaporator (1) is integrally provided with an exhaust pipe (113), and an interceptor (2) is provided above the rear of the exhaust pipe (113); the interceptor (2) is a vertically arranged disc-shaped structure, a switching motor (201) is fixedly provided in the middle of the rear side of the interceptor (2), and a circular intercepting cotton plate (202) is rotatably arranged inside the interceptor (2), and the switching motor (201) is fixedly connected to the middle of the intercepting cotton plate (202); a waste particle pipe (203) is fixedly connected to the lower front end of the interceptor (2); heat exchanger (3), the heat exchanger (3) is an integrated structure with channels arranged alternately at the top and bottom and front and back; a connecting hopper (301) is fixedly provided at the top and bottom and the front side of the heat exchanger (3), and the upper part is connected to the connecting hopper (301). The receiving bucket (301) is connected to the upper rear of the interceptor (2) by a pipe, and the front connecting bucket (301) is connected to the lower rear of the interceptor (2) by a pipe; the lower connecting bucket (301) is connected to the adsorption chamber (5) by a pipe; the receiving cylinder (6) is located inside the adsorption chamber (5) but does not fit against the inner wall of the adsorption chamber (5), the bottom of the receiving cylinder (6) is a hexagonal support structure, and the top of the hexagonal support structure is fixedly provided with a hanging shaft (601) in the middle, the hanging shaft (601) passes through the top middle of the adsorption chamber (5) and is positioned and installed with a conical ball bearing; the top of the adsorption chamber (5) is fixedly provided with a drive motor (7), and the top of the hanging shaft (601) is connected to the drive motor (7) by a bevel gear transmission; the movable round support (8). The movable circular support (8) can fit against the bottom of the evaporator (1), and a rubber sealing ring is fixedly installed at the bottom of the evaporator (1); four sets of support frames (101) are fixedly installed on the upper exterior of the evaporator (1), and the height of the support frame (101) is twice the height of the evaporator (1); an integrated lifting channel (102) is integrally connected to the upper front end of the evaporator (1), and an upwardly inclined input branch pipe (103) is integrally installed below the front end of the lifting channel (102); a spiral propeller (104) is rotatably installed inside the lifting channel (102), and a lifting motor (105) is fixedly installed at the top of the lifting channel (102), and the lifting motor (105) is connected to the spiral propeller (104) in a transmission connection; the support frame (101) is close to the evaporator. (1) One side of the evaporator (1) is equipped with a lifter (109) that slides along the guide rail; the support frame (101) is equipped with a vertical screw (110) that rotates on the side of the evaporator (1), and the vertical screw (110) is threadedly connected to the lifter (109); the top of the evaporator (1) is equipped with four sets of linkage shafts (111), and the linkage shafts (111) are connected to the top of the vertical screws (110) by bevel gear transmission; the top of the evaporator (1) is fixedly equipped with a drive motor (112), and the drive motor (112) is connected to a set of linkage shafts (111) by a reducer transmission; the rear end of the evaporator (1) is fixedly equipped with an air supply device (4), and two sets of air intake fans (401) driven by motors are rotatedly installed inside the air supply device (4);To avoid a decrease in interception effect, the intake fan (401) is turned on. Indoor air will pass through the air supply device (4) and heat exchanger (3) and be discharged from the waste particle pipe (203). The particles on the interception cotton plate (202) will be discharged in the opposite direction by backflushing. The bottom of the movable round support (8) is provided with a cross-shaped docking groove (801). The docking groove (801) can fit and be locked on the outside of the lifter (109). The docking surfaces of the lifter (109) and the docking groove (801) are rounded.
2. The waste treatment equipment for chemical reaction vessels as described in claim 1, characterized in that, An inner conical ring (106) is fixedly installed inside the evaporator (1); a heat insulation ring (107) is fixedly installed on the inner wall of the evaporator (1) below the inner conical ring (106), and a resistance heater (108) is fixedly installed on the inner arc surface of the heat insulation ring (107).
3. The waste treatment equipment for chemical reaction vessels as described in claim 1, characterized in that, A stirring motor (114) is fixedly installed at the top of the exhaust pipe (113). A stirring comb (115) is connected to the rotor end of the stirring motor (114) by a rotating rod. The stirring comb (115) is located inside the evaporator (1).
4. The waste treatment equipment for chemical reaction vessels as described in claim 1, characterized in that, The bottom of the adsorption chamber (5) is connected to an output pipe (501); a waste discharge pipe (502) is fixedly installed on the rear side of the adsorption chamber (5), and the top of the waste discharge pipe (502) is a funnel structure; a disassembly hole (503) is opened on the rear side of the adsorption chamber (5).
5. The waste treatment equipment for chemical reaction vessels as described in claim 4, characterized in that, The hexagonal support structure of the container (6) is provided with a discharge plug (602) by a threaded connection. The discharge plug (602) can be moved and aligned above the funnel structure of the waste discharge pipe (502). An intercepting mesh pad is fixedly provided in the interval of the hexagonal support structure below the container (6). Activated carbon particles are filled inside the container (6).
6. The waste treatment equipment for chemical reaction vessels as described in claim 2, characterized in that, The top of the movable round support (8) is fixedly provided with a barrier (802), and the inner diameter of the barrier (802) is consistent with the inner diameter of the inner conical ring (106).
Citation Information
Patent Citations
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