Garbage leachate full-quantitative treatment device of garbage compression station

By introducing an automatically controlled filter element moisture-proof and mildew-proof system into the leachate treatment device of the waste compression station, the problem of the device being inconvenient to automatically control the moisture-proof and mildew-proof of the filter element has been solved, improving the safety of the device and the service life of the filter element.

CN121266254APending Publication Date: 2026-01-06CHANGSHA XIAOSHUI ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202511787410.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-01
Publication Date
2026-01-06

AI Technical Summary

Technical Problem

The existing full-volume steam filtration treatment devices in waste compression stations are not convenient for automatic control of filter element moisture and mildew prevention, and manual control poses safety hazards and is inconvenient to operate.

Method used

A comprehensive landfill leachate treatment device is adopted, which uses a steam dust collection component and a leachate treatment device, including a steam dust collection component, an air intake detection component, a leachate steam impurity removal component, a cleaning component, an airflow detection component, and a ventilation and moisture-proof component to achieve automatic control of the filter element's moisture-proof and mildew-proof properties and safe disassembly.

Benefits of technology

It achieves automatic moisture and mildew prevention of the filter element, improves service life and safety, and reduces the safety hazards and operational complexity of manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a full-quantitative treatment device for landfill leachate of a garbage compression station, and relates to the technical field of steam filters. Comprising a steam dust collecting piece, and an air inlet piece is installed on the steam dust collecting piece and used for automatic pressure relief. A disassembly protection part is mounted on the steam dust collection part; a percolate steam impurity removal part is mounted on the steam dust collection part; a cleaning piece is mounted on the steam dust collecting piece; the ventilation moisture-proof part can be matched with the automatic detection work of the electronic flow switch, so that the wind power dehydration and mildew prevention work on the filter element can be automatically controlled when the steam treatment is suspended or the steam discharge is finished; the problem that an existing full-quantification steam filtering treatment device cannot conveniently and automatically control moisture and mildew of a filter element is solved.
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Description

Technical Field

[0001] This invention relates to the field of steam filter technology, specifically to a full-volume treatment device for landfill leachate from a landfill compression station. Background Technology

[0002] In actual leachate treatment at landfill compression stations, a full-volume treatment method is typically used. Evaporation is a common full-volume treatment method. The evaporation process can completely remove water from the concentrate, converting pollutants into solid residues such as miscellaneous salts, which facilitates subsequent harmless landfilling or resource utilization. In the evaporation treatment of leachate, the steam filter is an important piece of equipment. By isolating impurities carried in the steam, it can ensure the normal progress of subsequent treatment and reduce the overall impurity content. However, current full-volume steam filtration devices are not convenient for automatically controlling the moisture and mold prevention of the filter element. Landfill leachate itself contains a lot of impurities, and when the steam removal is paused for a long time, internal mold growth can easily occur. At the same time, it is not convenient for workers to keep the air closed for cleaning or replacing the filter element, resulting in poor safety. In addition, traditional manual control valves are not only easy to forget, but directly closing the valve can also cause a sudden increase in pipe pressure, further increasing safety hazards. Automatic pressure relief is also not convenient.

[0003] Therefore, we propose a full-volume treatment device for leachate from waste compression stations. Summary of the Invention

[0004] The purpose of this invention is to provide a full-volume treatment device for leachate from a waste compression station, in order to solve the problem mentioned in the background art that current full-volume steam filtration treatment devices are not convenient for automatic control of filter element moisture and mildew prevention.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a full-volume treatment device for leachate from a waste compression station, comprising a steam dust collector, an air inlet mounted on the steam dust collector for automatic pressure relief; a disassembly protection component mounted on the steam dust collector; a leachate steam impurity removal component mounted on the steam dust collector; a cleaning component mounted on the steam dust collector; an airflow detection component mounted on the air inlet; the airflow detection component for controlling and protecting the leachate steam impurity removal component; and a ventilation and moisture-proof component mounted on the steam dust collector. The steam dust collector includes a lower housing and a slag discharge solenoid valve; a flange is provided at the top of the lower housing; the valve pipe of the slag discharge solenoid valve is fixedly installed at the bottom of the lower housing; and the slag discharge solenoid valve is used to discharge impurities.

[0006] Preferably, the vapor dust collection component further includes: an upper housing, the bottom of which is provided with a flange; the flange at the bottom of the upper housing is bolted to the flange at the top of the lower housing; and the bottom of the slag discharge solenoid valve is guided to the outside via a hose.

[0007] Preferably, the air intake component includes: an air intake pipe, an air intake solenoid valve, a pressure relief pipe, and a pressure relief solenoid valve. The air intake pipe is fixedly installed on the side of the upper housing. The air intake pipe is provided with a flange. The air intake solenoid valve is fixedly installed on the air intake pipe. A one-way valve is provided inside the air intake pipe. The pressure relief pipe is fixedly installed on the air intake pipe. The pressure relief solenoid valve is fixedly installed on the pressure relief pipe. The one-way valve inside the air intake pipe is used to prevent backflow.

[0008] Preferably, the disassembly protection component includes: a disassembly cover, a control switch, and an electromagnet. The disassembly cover is slidably sleeved on the upper housing. A tension spring is sleeved on the upper housing, and the tension spring sleeved on the outer side of the upper housing is connected between the disassembly cover and the flange on the upper housing. A control switch is fixedly installed on the disassembly cover. A ring of electromagnets is fixedly installed on the disassembly cover, and the ring of electromagnets magnetically attracts the flanges on the upper housing. The control switch is electrically connected to the electromagnet, the intake solenoid valve, and the pressure relief solenoid valve.

[0009] Preferably, the leachate vapor removal component includes: a leachate mounting bracket, a discharge pipe, and an exhaust solenoid valve. The leachate mounting bracket is sleeved inside the lower housing. The leachate mounting bracket has a through hole. The bottom of the leachate mounting bracket has threads. The discharge pipe is fixedly mounted on the leachate mounting bracket and is fixedly mounted on the upper housing. The discharge pipe has a flange. The exhaust solenoid valve is fixedly mounted on the discharge pipe.

[0010] Preferably, the leachate vapor removal component further includes: a mesh cylinder and a filter element, wherein the mesh cylinder is threadedly connected to the thread at the bottom of the leachate mounting frame; the mesh cylinder is connected to a discharge pipe; the mesh cylinder has mesh holes; a filter element is fixedly sleeved on the outside of the mesh cylinder; and the filter element is used to filter out leachate vapor impurities.

[0011] Preferably, the cleaning component includes: a cleaning motor, a cleaning frame, and brush bristles. The cleaning motor is fixedly installed at the bottom of the lower housing. The output shaft of the cleaning motor passes through the lower housing. The cleaning frame is fixedly installed on the output shaft of the cleaning motor, and the cleaning frame presses against the filter element. Two rows of brush bristles are fixedly installed on the cleaning frame, and the two rows of brush bristles are respectively attached to the outside of the filter element.

[0012] Preferably, the airflow detection device includes: an airflow detection tube and an electronic flow switch, wherein the airflow detection tube is fixedly installed on the air intake pipe; the airflow detection tube is connected to the air intake pipe; the electronic flow switch is fixedly installed on the airflow detection tube; and the detection baffle of the electronic flow switch is located inside the air intake pipe.

[0013] Preferably, the ventilation and moisture-proof component includes: a moisture-proof air supply pipe and an air collecting hood, wherein the moisture-proof air supply pipe is fixedly installed on the upper housing; the end of the moisture-proof air supply pipe is fixedly installed on the discharge pipe; the moisture-proof air supply pipe is connected to the discharge pipe; an air collecting hood is fixedly installed on the moisture-proof air supply pipe; and a one-way valve is provided on the moisture-proof air supply pipe.

[0014] Preferably, the ventilation and moisture-proof component further includes: an electric hot air blower, which is fixedly installed inside the air collection hood by a bracket; the electric hot air blower consists of a motor, a heating wire, and an impeller; the electronic flow switch is electrically connected to the slag discharge solenoid valve, the exhaust solenoid valve, the electric hot air blower, and the cleaning motor.

[0015] Compared with the prior art, the beneficial effects of the present invention are: This invention employs a disassembly protective component that can shield the bolts connecting the upper and lower housings. When workers need to disassemble the filter element, this prevents them from controlling and shutting off the gas path first, thus preventing burns caused by leakage due to continuous steam release. At the same time, this structure can work with a pressure relief solenoid valve to automatically relieve pressure, avoiding the safety hazards caused by a sudden increase in boiler internal pressure when the inlet solenoid valve is closed, and further ensuring the safety of disassembly and maintenance.

[0016] The automatic control of filter element cleaning is achieved by using a cleaning component in conjunction with an airflow detection component. This can extend the service life of the filter element, maintain filtration quality, and has a simple structure and control. At the same time, the automatic activation of the air supply pressure backflushing by the closing of the air intake solenoid valve and the air venting and moisture-proof component can avoid the problem of impurities adhering to the surface of the filter element during continuous air intake, which is difficult to clean by brushing. This can improve the cleaning quality.

[0017] The use of ventilation and moisture-proof components can be combined with the automatic detection of electronic flow switches to achieve automatic control of the filter element to perform wind dehydration and mold prevention when steam treatment is paused or steam discharge is completed. This prevents manual operation from being irregular and untimely, especially for intermittent steam purification work, which is subject to different ambient temperatures and different mold growth times. It is difficult for manual disassembly and drying to be timely, and disassembly and drying are more cumbersome. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of a landfill leachate full-volume treatment device for a landfill compression station according to the present invention; Figure 2 This is a cross-sectional view of the internal structure of a landfill leachate full-volume treatment device for a landfill compression station according to the present invention. Figure 3 This is a schematic diagram of the vapor dust collection component structure of the present invention; Figure 4 This is a partial structural cross-sectional view of a landfill leachate full-volume treatment device for a landfill compression station according to the present invention. Figure 5 For the present invention Figure 3 Enlarged view of the structure of region B in the middle; Figure 6 This is a schematic diagram of the air intake component structure of the present invention; Figure 7 This is a schematic diagram of the disassembly protective component structure of the present invention; Figure 8 This is a schematic diagram of the structure of the leachate vapor removal component of the present invention; Figure 9 This is a schematic diagram of the cleaning component structure of the present invention; Figure 10 This is a control system diagram of the control switch and electronic flow switch of the present invention.

[0019] In the diagram: 1. Steam dust collection component; 101. Lower housing; 1011. Slag discharge solenoid valve; 102. Upper housing; 2. Air inlet component; 201. Air inlet pipe; 2011. Air inlet solenoid valve; 202. Pressure relief pipe; 2021. Pressure relief solenoid valve; 3. Disassembly protection component; 301. Disassembly cover; 302. Control switch; 303. Electromagnet; 4. Leachate steam impurity removal component; 401. Leachate mounting bracket; 402. Discharge pipe; 4021. Exhaust solenoid valve; 403. Mesh cylinder; 404. Filter element; 5. Cleaning component; 501. Cleaning motor; 502. Cleaning rack; 503. Brush bristles; 6. Airflow detection component; 601. Airflow detection pipe; 602. Electronic flow switch; 7. Ventilation and moisture-proof component; 701. Moisture-proof air supply pipe; 702. Air collector hood; 703. Electric hot air blower. Detailed Implementation

[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0021] Example 1: Please refer to Figures 1 to 10 As shown: This invention provides a technical solution: a full-volume treatment device for leachate from a waste compression station, comprising a steam dust collector 1, an air inlet 2 installed on the steam dust collector 1 for automatic pressure relief; a disassembly protection component 3 installed on the steam dust collector 1; a leachate steam impurity removal component 4 installed on the steam dust collector 1; a cleaning component 5 installed on the steam dust collector 1; an airflow detection component 6 installed on the air inlet 2; the airflow detection component 6 is used to control and protect the leachate steam impurity removal component 4; a ventilation and moisture-proof component 7 is installed on the steam dust collector 1; the steam dust collector 1 includes: a lower housing 101 and a slag discharge solenoid valve 1011; a flange is provided on the top of the lower housing 101; the valve pipe of the slag discharge solenoid valve 1011 is fixedly installed at the bottom of the lower housing 101; the slag discharge solenoid valve 1011 is used to discharge impurities; the slag discharge solenoid valve 1011 is connected to an open and safe outdoor area through a hose.

[0022] The vapor dust collection component 1 further includes: an upper housing 102, with a flange at the bottom; a cavity between the lower housing 101 and the upper housing 102 for storing vapor; the flange at the bottom of the upper housing 102 is bolted to the flange at the top of the lower housing 101; the bottom of the slag discharge solenoid valve 1011 is guided to an open and safe outdoor area via a hose; the air intake component 2 includes: an air intake pipe 201, an air intake solenoid valve 2011, a pressure relief pipe 202, and a pressure relief solenoid valve 2021; the air intake pipe 201 is fixedly installed on the side of the upper housing 102; the air intake pipe 201 is provided with a flange; the air intake solenoid valve 2011 is fixedly installed on the air intake pipe 201; The intake pipe 201 is equipped with a one-way valve; a pressure relief pipe 202 is fixedly installed on the intake pipe 201; a pressure relief solenoid valve 2021 is fixedly installed on the pressure relief pipe 202; the one-way valve inside the intake pipe 201 is used to prevent backflow; the disassembly protection component 3 includes: a disassembly cover 301, a control switch 302, and an electromagnet 303. The disassembly cover 301 is slidably sleeved on the upper housing 102; a tension spring is sleeved on the upper housing 102, and the tension spring sleeved on the outside of the upper housing 102 is connected between the disassembly cover 301 and the flange on the upper housing 102; a control switch 302 is fixedly installed on the disassembly cover 301; a pressure relief solenoid valve 2021 is fixedly installed on the disassembly cover 301. A single electromagnet 303 is used, with each electromagnet 303 magnetically attracting the flange on the upper housing 102. A control switch 302 is electrically connected to the electromagnet 303, the intake solenoid valve 2011, and the pressure relief solenoid valve 2021. A disassembly protection component 3 can shield the bolts connecting the upper housing 102 and the lower housing 101. When workers need to disassemble the filter element 404, they are restricted from first closing the air circuit, i.e., closing the intake solenoid valve 2011, before proceeding with disassembly. This effectively improves the safety of disassembly and maintenance, preventing burns caused by continuous vapor release. This structure can also be used in conjunction with the pressure relief solenoid valve 2021. Automatic pressure relief avoids the safety hazards caused by a sudden increase in boiler internal pressure when the inlet solenoid valve 2011 is closed. It further ensures the safety of disassembly and maintenance and is more practical. During normal filtration of leachate vapor, the electromagnet 303 is kept in contact with the flange on the upper housing 102. At this time, the disassembly cover 301 blocks the bolts connecting the upper housing 102 and the lower housing 101, making it impossible to reach the hex wrench to disassemble the bolts connecting the upper housing 102 and the lower housing 101. When it is necessary to disassemble the filter element 404, the control switch 302 needs to be pressed to de-energize the electromagnet 303 in order to release the magnetic attraction of the upper housing 102.

[0023] The leachate vapor removal component 4 includes: a leachate mounting bracket 401, a discharge pipe 402, and an exhaust solenoid valve 4021. The leachate mounting bracket 401 is sleeved inside the lower housing 101. The leachate mounting bracket 401 has a ring of through holes and a threaded bottom. The discharge pipe 402 is fixedly mounted on the leachate mounting bracket 401 and is also fixedly mounted on the upper housing 102. The discharge pipe 402 has a flange and the exhaust solenoid valve 4021 is fixedly mounted on it. The leachate vapor removal component 4 also includes: a mesh cylinder 403 and a filter element 404. The mesh cylinder 403 is threadedly connected to the leachate... The mounting bracket 401 has threads at its bottom; the mesh cylinder 403 connects to the discharge pipe 402; the mesh cylinder 403 has mesh holes; a filter element 404 is fixedly sleeved on the outside of the mesh cylinder 403; the filter element 404 is used to filter out leachate vapor impurities; the cleaning component 5 includes: a cleaning motor 501, a cleaning frame 502, and brush bristles 503. The cleaning motor 501 is fixedly installed at the bottom of the lower housing 101; the output shaft of the cleaning motor 501 passes through the lower housing 101; the cleaning frame 502 is fixedly installed on the output shaft of the cleaning motor 501, and the cleaning frame 502 presses against the filter element 404; two rows of brush bristles 503 are fixedly installed on the cleaning frame 502, and... Two rows of bristles 503 are respectively attached to the outside of the filter element 404; the leachate vapor removal component 4 can continuously perform leachate vapor removal and filtration, ensuring the normal operation of subsequent steam condensation, valve control and other equipment, and reducing the content of subsequent impurities; the airflow detection component 6 includes: an airflow detection tube 601 and an electronic flow switch 602, which can be a TX-WF16 type electronic flow switch 602; the airflow detection tube 601 is fixedly installed on the inlet pipe 201; the airflow detection tube 601 is connected to the inlet pipe 201; the electronic flow switch 602 is fixedly installed on the airflow detection tube 601; the electronic flow switch 602 detects... The baffle is located inside the air intake pipe 201. The airflow detection component 6 can automatically monitor the air intake and achieve automatic control. It ensures that daily cleaning is performed when the air intake stops. The cleaning component 5, together with the airflow detection component 6, can automatically control the cleaning of the filter element 404, which can extend the service life of the filter element 404 and maintain the filtration quality. The structure and control are simple. At the same time, with the closing of the air intake solenoid valve 2011 and the automatic start of the ventilation and moisture-proof component 7 to supply air pressure backflushing, it can avoid the problem of impurities adhering to the surface of the filter element 404 when the air intake is continuous, which is difficult to clean by brushing. It can improve the cleaning quality. This structure can automatically control the cleaning.

[0024] The ventilation and moisture-proof component 7 includes: a moisture-proof air supply pipe 701 and an air collector 702. The moisture-proof air supply pipe 701 is fixedly installed on the upper housing 102; the end of the moisture-proof air supply pipe 701 is fixedly installed on the discharge pipe 402; the moisture-proof air supply pipe 701 is connected to the discharge pipe 402; the air collector 702 is fixedly installed on the moisture-proof air supply pipe 701; a one-way valve is provided on the moisture-proof air supply pipe 701; the ventilation and moisture-proof component 7 also includes: an electric hot air blower 703, which is connected to the discharge pipe 402. The bracket is fixedly installed inside the air collection hood 702; the electric hot air blower 703 consists of a motor, heating wire, and impeller; the electronic flow switch 602 is electrically connected to the slag discharge solenoid valve 1011, the exhaust solenoid valve 4021, the electric hot air blower 703, and the cleaning motor 501; the ventilation and moisture-proof component 7 can cooperate with the automatic detection of the electronic flow switch 602 to achieve automatic control of the filter element 404 for air-powered dehydration when steam treatment is paused or steam discharge is completed. To prevent mold growth, manual operation must be standardized and timely, especially for intermittent steam purification. Mold growth time varies depending on ambient temperature, making timely disassembly and drying difficult and cumbersome. Landfill leachate vapor contains many impurities and is highly susceptible to mold growth. Maintaining the dryness of filter element 404 and the interior of the lower housing 101 is achieved through automatic control, reducing the risk of mold growth in filter element 404. While performing backflushing cleaning, this system assists in drying filter element 404, ensuring its lifespan and preventing clogging and filtration quality issues caused by mold. Whether filtration is paused manually or completed, as long as air intake is stopped at the air inlet pipe 201, the electronic flow switch 602 can control the electric hot air blower 703 to start, supplying hot air to dry filter element 404. The drying temperature does not need to be too high, just enough to prevent bacterial growth.

[0025] The working principle of this embodiment is as follows: First, during normal filtration of leachate vapor for impurity removal, the electromagnet 303 remains powered, electromagnetically attracting the flange on the upper housing 102. At this time, the disassembly cover 301 blocks the bolts connecting the upper and lower housings 101, preventing the use of a hex wrench to disassemble them. When it is necessary to disassemble the filter element 404, the control switch 302 must be pressed to de-energize the electromagnet 303, thus releasing the magnetic attraction to the upper housing 102. Only then can the disassembly cover 301 be lifted manually, allowing the hex wrench to be inserted to disassemble the bolts. Simultaneously, the control switch 302 must be pressed. At 02, the intake solenoid valve 2011 will be closed and the pressure relief solenoid valve 2021 will be opened to assist in closing the intake and releasing pressure. At this time, the operator can disassemble the bolts connecting the upper housing 102 and the lower housing 101 for maintenance, which is safer and more reliable. When disassembling the filter element 404, the screen cylinder 403 can be manually rotated for disassembly. When the intake solenoid valve 2011 is closed, air pressure no longer enters the lower housing 101. At this time, the electronic flow switch 602 can detect and control the cleaning motor 501 to start, driving the cleaning frame 502 to rotate, and the brush 503 brushes the filter element 404. At this time, the electric hot air blower 703 also starts to supply air pressure, and the one-way valve on the moisture-proof air supply pipe 701 will be open. At this time, the electronic flow switch 602 will also control the exhaust solenoid valve 4021 to be de-energized and kept closed, while the slag discharge solenoid valve 1011 opens, so as to cooperate with the air force to discharge the impurities brushed off the filter element 404, and carry out effective cleaning work. Regardless of whether the filtration and impurity removal is manually paused or completed, as long as the air intake pipe 201 stops air intake, the electronic flow switch 602 can control the electric hot air blower 703 to start, supplying hot air to dry the filter element 404. The drying temperature does not need to be too high. To prevent bacterial growth, after normal steam purification is completed, even if the inlet solenoid valve 2011 is not closed, the one-way valve inside the inlet pipe 201 can prevent backflow and ensure that the airflow is discharged through the slag discharge solenoid valve 1011. After drying and cleaning, the power to the electronic flow switch 602 can be directly cut off. The next time steam purification filtration is performed, the power to the electronic flow switch 602 needs to be turned on again; otherwise, the electronic flow switch 602 cannot detect the inlet air and control the opening of the exhaust solenoid valve 4021 and the closing of the slag discharge solenoid valve 1011 to ensure normal airflow. The circuit diagram is attached. Figure 10 As shown.

[0026] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0027] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A full-scale treatment device for leachate of garbage compression station, comprising a vapor dust collector (1), wherein an air inlet (2) is installed on the vapor dust collector (1), and characterized in that: The air inlet part (2) is used for automatic pressure relief; the vapor dust collecting part (1) is provided with a dismounting protection part (3); The vapor dust collecting part (1) is provided with a leachate vapor impurity removing part (4); The vapor dust collecting part (1) is provided with a cleaning part (5); the air inlet part (2) is provided with an air flow detecting part (6); the air flow detecting part (6) is used for controlling the protection leachate vapor impurity removing part (4); the vapor dust collecting part (1) is provided with an air ventilation moisture-proof part (7); The vapor dust collecting part (1) comprises a lower shell (101) and a slag discharge electromagnetic valve (1011); the lower shell (101) is provided with a flange at the top; the valve pipe of the slag discharge electromagnetic valve (1011) is fixedly installed at the bottom of the lower shell (101).

2. The full-scale leachate treatment apparatus for a waste compression station according to claim 1, characterized in that: The vapor dust collecting part (1) further comprises an upper shell (102), which is provided with a flange at the bottom; the flange at the bottom of the upper shell (102) is connected to the flange at the top of the lower shell (101) through bolts.

3. The apparatus for total treatment of leachate from a waste compression station according to claim 2, characterized in that: The air inlet part (2) comprises an air inlet pipe (201), an air inlet electromagnetic valve (2011), a pressure relief pipe (202) and a pressure relief electromagnetic valve (2021); the air inlet pipe (201) is fixedly installed at the side of the upper shell (102); the air inlet pipe (201) is provided with a flange; the air inlet electromagnetic valve (2011) is fixedly installed on the air inlet pipe (201); the air inlet pipe (201) is provided with a one-way valve inside; the pressure relief pipe (202) is fixedly installed on the air inlet pipe (201); the pressure relief electromagnetic valve (2021) is fixedly installed on the pressure relief pipe (202); the one-way valve inside the air inlet pipe (201) is used for preventing backflow.

4. The apparatus for full-scale treatment of leachate from a waste compression station according to claim 3, characterized in that: The dismounting protection part (3) comprises a dismounting buckle cover (301), a control switch (302) and electromagnets (303); the dismounting buckle cover (301) is slidably sleeved on the upper shell (102); the upper shell (102) is sleeved with a tension spring, and the tension spring sleeved on the outer side of the upper shell (102) is connected between the flange on the upper shell (102) and the dismounting buckle cover (301); the control switch (302) is fixedly installed on the dismounting buckle cover (301); a ring of electromagnets (303) is fixedly installed on the dismounting buckle cover (301), and each of the electromagnets (303) magnetically attracts the flange on the upper shell (102); the control switch (302) is electrically connected to the electromagnets (303), the air inlet electromagnetic valve (2011) and the pressure relief electromagnetic valve (2021).

5. The apparatus for full-scale treatment of leachate from a waste compression station according to claim 2, characterized in that: The leachate vapor impurity removing part (4) comprises a leachate mounting rack (401), a discharge pipe (402) and an exhaust electromagnetic valve (4021); the leachate mounting rack (401) is sleeved inside the lower shell (101); the leachate mounting rack (401) is provided with a ring of through holes; the bottom of the leachate mounting rack (401) is provided with threads; the discharge pipe (402) is fixedly installed on the leachate mounting rack (401), and the discharge pipe (402) is fixedly installed on the upper shell (102); the discharge pipe (402) is provided with a flange; the exhaust electromagnetic valve (4021) is fixedly installed on the discharge pipe (402).

6. The apparatus for full-scale treatment of leachate from a waste compression station according to claim 5, characterized in that: The leachate vapor impurity removal part (4) further comprises a mesh cylinder (403) and a filter core (404), the mesh cylinder (403) is threadedly connected to the threads at the bottom of the leachate installation rack (401); the mesh cylinder (403) is communicated with the discharge pipe (402); the mesh cylinder (403) is provided with mesh holes; the mesh cylinder (403) is fixedly sleeved with the filter core (404) outside; the filter core (404) is used for filtering out garbage leachate vapor impurities.

7. A full-scale leachate treatment apparatus for a waste compression station according to claim 6, characterized in that: The cleaning part (5) comprises a cleaning motor (501), a cleaning frame (502) and brush hairs (503), the cleaning motor (501) is fixedly installed at the bottom of the lower shell (101); the output shaft of the cleaning motor (501) penetrates through the lower shell (101); the output shaft of the cleaning motor (501) is fixedly installed with the cleaning frame (502), and the cleaning frame (502) is pressed and attached to the filter core (404); the cleaning frame (502) is fixedly installed with two rows of brush hairs (503), and the two rows of brush hairs (503) are respectively attached to the outer side of the filter core (404).

8. The apparatus for full-scale treatment of leachate from a waste compression station according to claim 7, characterized in that: The airflow detection part (6) comprises an airflow detection pipe (601) and an electronic flow switch (602), the airflow detection pipe (601) is fixedly installed on the air inlet pipe (201); the airflow detection pipe (601) is communicated with the air inlet pipe (201); the airflow detection pipe (601) is fixedly installed with the electronic flow switch (602); the detection baffle of the electronic flow switch (602) is located inside the air inlet pipe (201).

9. A full-scale leachate treatment apparatus for a waste compression station according to claim 8, characterized in that: The air ventilation and moisture prevention part (7) comprises a moisture-proof air supply pipe (701) and a wind collecting cover (702), the moisture-proof air supply pipe (701) is fixedly installed on the upper shell (102); the moisture-proof air supply pipe (701) is fixedly installed at the end of the discharge pipe (402); the moisture-proof air supply pipe (701) is communicated with the discharge pipe (402); the moisture-proof air supply pipe (701) is fixedly installed with the wind collecting cover (702); the moisture-proof air supply pipe (701) is provided with a one-way valve.

10. The apparatus for total treatment of leachate from a waste compression station according to claim 9, characterized in that: The air ventilation and moisture prevention part (7) further comprises an electric hot air blower (703), the electric hot air blower (703) is fixedly installed inside the wind collecting cover (702) through a support; the electric hot air blower (703) is composed of a motor, a heating wire and an impeller; the electronic flow switch (602) is electrically connected with the deslagging electromagnetic valve (1011), the air discharge electromagnetic valve (4021), the electric hot air blower (703) and the cleaning motor (501).