Waste water and waste gas treatment structure of garbage compression station
By designing a wastewater and waste gas treatment structure of the garbage compression station that includes separation box and filtering components, the problem of difficulty in cleaning solid waste in wastewater treatment in the prior art is solved, efficient compression drying of impurities and automatic unloading of impurities is achieved, the wastewater purification effect is improved and the burden of manual cleaning is reduced.
Patent Information
- Application Number
- CN202510082270.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2025-05-06
AI Technical Summary
In the wastewater treatment of existing garbage compression stations, it is difficult to effectively clean up solid waste, resulting in manual cleaning of the filter grille, which is time-consuming and labor-intensive.
A wastewater and exhaust gas treatment structure including a separation box and a filtering and removal assembly is designed. The impurity is intercepted, compressed and dried by the spiral blades and screen barrels in the filtering and removal assembly, dehydration is carried out in combination with a heating rod, and the impurity is automatically discharged through an automated mechanical structure.
It realizes efficient filtering, compression and drying of impurities in wastewater, removes moisture from impurities, and avoids the need for manual cleaning through an automated discharge system, and collects and purifies the waste gas generated during the treatment process.
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Figure CN119930072A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of wastewater treatment, in particular to a wastewater and waste gas treatment structure for a garbage compression station. Background Art
[0002] Garbage compression stations, as a type of urban garbage transfer equipment, are also constantly developing. Their promotion and use have greatly improved the environment, eliminated secondary pollution, reduced the breeding of mosquitoes and flies, improved transfer efficiency, reduced the labor intensity of workers, and greatly reduced operating costs.
[0003] The existing garbage compression stations still produce a lot of solid waste in the production wastewater generated during garbage loading and unloading and compression operations. After intercepting and treating large-volume impurities in the wastewater, it is difficult to clean the treated impurities and waste. The filter grilles need to be cleaned manually later, which is time-consuming and labor-intensive.
[0004] Therefore, in view of this, the existing structure and deficiencies are studied and improved, and a wastewater and waste gas treatment structure for a garbage compression station is proposed. Summary of the invention
[0005] The purpose of the present invention is to provide a wastewater and waste gas treatment structure for a garbage compression station to solve the problems raised in the above-mentioned background technology.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a wastewater and waste gas treatment structure of a garbage compression station, comprising a separation box and a filtering assembly, a filtering assembly is arranged in the middle of the separation box, the filtering assembly comprises an inlet pipe, an axle, a transmission wheel, spiral blades, an embedded groove, a screen cylinder, a synchronous gear ring, a driving wheel and a motor, a water inlet pipe is arranged on one side of the separation box, and a shaft is rotatably connected in the water inlet pipe, a transmission wheel is connected at one end of the shaft, and spiral blades are arranged on the outside of the shaft, embedded grooves are symmetrically arranged in the separation box, and a screen cylinder is embedded in the embedded grooves, a synchronous gear ring is arranged on the side of the screen cylinder close to the water inlet pipe, and a driving wheel is arranged between the synchronous gear ring and the transmission wheel, and a motor is arranged below the driving wheel.
[0007] Furthermore, the sieve drum is rotatably connected to the separation box through an embedded groove, and micropores are opened on the surface of the sieve drum. The synchronous gear ring and the transmission wheel are meshed with the driving wheel, and a heating rod is arranged in the shaft.
[0008] Furthermore, a rail is symmetrically provided at the other end of the shaft rod, and a clamping spring is connected inside the rail. A clamping block is connected to the other end of the clamping spring, and the clamping block is elastically connected to the rail through the clamping spring. The clamping block is slidably connected to the shaft rod through the clamping rail.
[0009] Furthermore, a discharge cylinder is connected to the other side of the separation box, and a compression spring is symmetrically connected inside the discharge cylinder. A swivel is connected to the other end of the compression spring, and a baffle is rotatably connected to one side of the swivel.
[0010] Furthermore, a through groove is opened in the middle of the discharge barrel, and a push plate is snap-connected in the through groove, and return springs are symmetrically connected to both sides of the push plate, and the push plate is elastically connected to the discharge barrel through the return spring.
[0011] Furthermore, a sleeve is rotatably engaged with a side of the discharging cylinder away from the separation box, and a clamping groove is symmetrically provided on the inner side of the sleeve. An eccentric wheel is provided on one side of the pushing plate of the discharging cylinder.
[0012] Furthermore, the sleeve is sleeved on one end of the shaft rod where the clamping rail is opened, and the clamping block is clamped and linked with the clamping rail through a clamping groove, and the sleeve is connected with the eccentric wheel through a belt and a pulley.
[0013] Furthermore, a treatment pool is provided below the separation box, and a partition is provided in the treatment pool, a control valve is provided on the partition, a sewage pipe is provided in the treatment pool, and a sewage pump is provided on one side of the treatment pool, a return pipe is provided on one side of the sewage pump, and the return pipe is connected to the water supply pipeline of the water inlet pipe.
[0014] Furthermore, a purification box is arranged above the separation box, and an exhaust fan is arranged on one side of the purification box, an exhaust pipe is arranged on one side of the exhaust fan, and one end of the exhaust pipe is connected to a condensation box, and the exhaust pipe is connected to the inside of the treatment pool.
[0015] Furthermore, an air inlet pipe is provided on one side of the condensation box, and a liquid discharge pipe is provided below the condensation box, the air inlet pipe is connected to the separation box, and the liquid discharge pipe is connected to the treatment tank.
[0016] The present invention provides a wastewater and waste gas treatment structure for a garbage compression station, which has the following beneficial effects: when in use, impurities in the wastewater can be filtered out, and the impurities can be compressed and dried to remove the moisture contained therein as much as possible, and the waste gas generated when filtering and treating the wastewater can be collected and purified to avoid waste gas leakage, and the precipitate generated during the wastewater treatment can also be separated, dried and compressed again to improve the wastewater purification effect, and the compressed impurities can be automatically discharged without manual cleaning.
[0017] 1. When the present invention is in use, after sending waste water into the water inlet pipe, the motor is started, and the motor can drive the driving wheel to rotate, and then drive the shaft rod and the screen drum to rotate in the water inlet pipe and the separation box respectively through the transmission wheel and the synchronous gear ring, and the rotation direction of the shaft rod and the screen drum is opposite, the embedded groove can limit the screen drum to avoid the deflection of the screen drum, and the shaft rod can drive the spiral blades to rotate in the screen drum. After the waste water enters the screen drum from the water inlet pipe, the impurities can be intercepted in the screen drum, the spiral blades can transport the impurities and squeeze and compress the impurities through the baffle, and at the same time the screen drum can drive the impurities to be centrifugally dehydrated, and the heating rod inside the shaft rod can also heat and dry the impurities through the spiral blades to further dehydrate the impurities, and the screen drum rotating in the opposite direction to the spiral blades can also increase the compression rate of the impurities when driving the impurities to move. In summary, when in use, the impurities in the waste water can be filtered out, and the impurities can be compressed and dried to remove the moisture contained therein as much as possible.
[0018] 2. When the present invention compresses impurities, as the number of compressed impurities increases, the impurities can push the baffle to slide in the discharge barrel and compress the compression spring through the rotating ring. The shaft rod can limit the baffle to prevent it from deflecting. When the baffle contacts the clamping block, the clamping block can be pressed to slide in the clamping rail and stretch the clamping spring. After the baffle passes through the through groove, the clamping block is pressed into the clamping groove by the baffle, and the shaft rod can drive the sleeve to rotate synchronously through the clamping block, so that the sleeve drives the eccentric wheel to rotate on one side of the push plate, so that the eccentric wheel presses the push plate to move downward in the through groove and compresses the reset spring. The compressed impurities at the through groove are pushed out from the discharge barrel for unloading. After unloading, the push plate is reset under the action of the reset spring, and the compression spring rebounds and drives the baffle to reset through the swivel, so that the baffle blocks the impurities again. During the baffle resetting process, the card block also rebounds under the action of the card spring and comes out of the card slot. The sleeve no longer rotates with the shaft rod, avoiding the eccentric wheel from continuing to rotate and causing the push plate to cause pressure damage to the compression spring. In summary, when in use, the compressed garbage can be automatically discharged and unloaded without manual cleaning.
[0019] 3. In the present invention, after the wastewater with impurities filtered out enters the treatment tank from the separation box, the partition divides the treatment tank into multiple spaces, and the control valve can control the communication between the spaces, so that the wastewater is transferred, static, and purified in turn, and the spaces separated by the partitions on the front and back sides of the treatment tank are overflow chambers to avoid excessive wastewater in the static chamber. The sediment generated during static and purification can be sucked out of the treatment tank by the sewage pump through the sewage pump pipe and sent into the water inlet pipe from the return pipe, and it is dried, dehydrated and compressed again, which is convenient for cleaning the sediment in the treatment tank. When separating impurities and purifying wastewater, the vacuum pump is turned on. The exhaust gas in the treatment tank and the separation box can be pumped out and sent to the purification box for purification. When the exhaust gas in the separation box is pumped out, the water analysis of the impurities can be accelerated, and the water vapor generated when drying the impurities can be pumped out of the separation box together with the exhaust gas. After the exhaust gas enters the condensation box from the separation box through the air inlet pipe, the water vapor is condensed and separated from the exhaust gas and enters the treatment tank through the drain pipe to wait for treatment. The exhaust gas enters the exhaust pipe and is sent to the purification box for purification. In summary, when in use, the sediment in the treatment tank can be dehydrated and compressed, and the exhaust gas in the treatment tank and the separation box can be collected and purified. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of a half-cut three-dimensional exploded structure of a separation box of a wastewater and waste gas treatment structure of a garbage compression station of the present invention;
[0021] Figure 2 It is a schematic diagram of the overall half-section three-dimensional structure of a wastewater and waste gas treatment structure of a garbage compression station of the present invention;
[0022] Figure 3 It is a schematic diagram of the cross-section front view of a wastewater and waste gas treatment structure of a garbage compression station of the present invention;
[0023] Figure 4 It is a schematic diagram of the overall three-dimensional structure of a wastewater and waste gas treatment structure of a garbage compression station of the present invention;
[0024] Figure 5 This is a schematic diagram of the main structure of a wastewater and waste gas treatment structure of a garbage compression station of the present invention;
[0025] Figure 6 This is a schematic diagram of a half-sectioned three-dimensional exploded structure of a treatment pool of a wastewater and waste gas treatment structure for a garbage compression station of the present invention.
[0026] In the figure: 1, separation box; 2, filter assembly; 201, water inlet pipe; 202, shaft; 203, transmission wheel; 204, spiral blade; 205, embedded groove; 206, screen drum; 207, synchronous gear ring; 208, driving wheel; 209, motor; 3, rail; 4, clamping spring; 5, clamping block; 6, discharge barrel; 7, compression spring; 8, rotating ring; 9, baffle; 10, through groove; 11, push plate; 12, return spring; 13, sleeve; 14, clamping groove; 15, eccentric wheel; 16, treatment tank; 17, partition; 18, control valve; 19, sewage pipe; 20, sewage pump; 21, return pipe; 22, purification box; 23, vacuum pump; 24, vacuum pipe; 25, condensation box; 26, air inlet pipe; 27, drainage pipe. DETAILED DESCRIPTION
[0027] See also Figures 1 to 6 The present invention provides a technical solution: a wastewater and waste gas treatment structure of a garbage compression station, including a separation box 1 and a filter assembly 2, the filter assembly 2 is arranged in the middle of the separation box 1, and the filter assembly 2 includes an inlet pipe 201, a shaft 202, a transmission wheel 203, a spiral blade 204, an embedded groove 205, a screen drum 206, a synchronous gear ring 207, a driving wheel 208 and a motor 209, and a water inlet pipe 201 is arranged on one side of the separation box 1, and a rotating A shaft rod 202 is connected, one end of the shaft rod 202 is connected to a transmission wheel 203, and a spiral blade 204 is arranged on the outer side of the shaft rod 202, and grooves 205 are symmetrically arranged in the separation box 1, and a screen drum 206 is embedded and connected in the grooves 205, and a synchronous gear ring 207 is arranged on the side of the screen drum 206 close to the water inlet pipe 201, and a driving wheel 208 is arranged between the synchronous gear ring 207 and the transmission wheel 203, and a motor 209 is arranged below the driving wheel 208.
[0028] See also Figures 1 to 5The screen drum 206 is rotatably connected to the separation box 1 through the embedded groove 205, and micropores are provided on the surface of the screen drum 206. The synchronous gear ring 207 and the transmission wheel 203 are meshed with the driving wheel 208. A heating rod is arranged in the shaft 202, and a clamping rail 3 is symmetrically provided at the other end of the shaft 202, and a clamping spring 4 is connected in the clamping rail 3, and a clamping block 5 is connected at the other end of the clamping spring 4, and the clamping block 5 is elastically connected to the clamping rail 3 through the clamping spring 4, and the clamping block 5 is slidably connected to the shaft 202 through the clamping rail 3, and a discharging cylinder 6 is connected to the other side of the separation box 1, and a compression spring 7 is symmetrically connected in the discharging cylinder 6, and a swivel 8 is connected at the other end of the compression spring 7, and the swivel A baffle plate 9 is rotatably connected to one side of the ring 8, a through groove 10 is provided in the middle of the discharge barrel 6, and a push plate 11 is engaged and connected in the through groove 10, and return springs 12 are symmetrically connected on both sides of the push plate 11, and the push plate 11 is elastically connected to the discharge barrel 6 through the return spring 12, and a sleeve 13 is rotatably connected to the side of the discharge barrel 6 away from the separation box 1, and a slot 14 is symmetrically provided on the inner side of the sleeve 13, and an eccentric wheel 15 is provided on one side of the push plate 11 of the discharge barrel 6, the sleeve 13 is sleeved on one end of the shaft 202 with the card rail 3, and the card block 5 is engaged and linked with the card rail 3 through the card slot 14, and the sleeve 13 is connected to the eccentric wheel 15 through a belt and a pulley;
[0029] The specific operation is as follows. When in use, after the waste water is sent into the water inlet pipe 201, the motor 209 is started, and the motor 209 can drive the driving wheel 208 to rotate, and then drive the shaft 202 and the screen drum 206 to rotate in the water inlet pipe 201 and the separation box 1 respectively through the transmission wheel 203 and the synchronous gear ring 207, and the rotation direction of the shaft 202 and the screen drum 206 is opposite, and the embedded groove 205 can limit the screen drum 206 to prevent the screen drum 206 from deflecting. The shaft 202 can drive the spiral blade 204 to rotate in the screen drum 206. After the waste water enters the screen drum 206 from the water inlet pipe 201, the impurities can be intercepted in the screen drum 206. The spiral blades 204 can transport the impurities and squeeze and compress the impurities through the baffle 9. At the same time, the screen drum 206 can drive the impurities to be centrifugally dehydrated, and the heating rod inside the shaft 202 can also heat and dry the impurities through the spiral blades 204 to further dehydrate the impurities. The screen drum 206 rotating in the opposite direction to the spiral blades 204 can also increase the compression rate of the impurities when driving the impurities to move. In summary, when in use, the impurities in the wastewater can be filtered out, and the impurities can be compressed and dried to remove the water contained therein as much as possible. When compressing the impurities, as the compressed impurities increase, the impurities can be pushed out. The movable baffle plate 9 slides in the discharge barrel 6 and compresses the compression spring 7 through the rotating ring 8. The shaft rod 202 can limit the baffle plate 9 to prevent it from deflecting. When the baffle plate 9 contacts the block 5, the block 5 can be pressed to slide in the rail 3 and stretch the clamping spring 4. After the baffle plate 9 passes through the through groove 10, the block 5 is pressed into the clamping groove 14 by the baffle plate 9. The shaft rod 202 can drive the sleeve 13 to rotate synchronously through the block 5, so that the sleeve 13 drives the eccentric wheel 15 to rotate on one side of the push plate 11, so that the eccentric wheel 15 presses the push plate 11 to move downward in the through groove 10 and compresses the reset spring 12, which is located at the through groove. The compressed impurities at the groove 10 are pushed out from the discharge barrel 6 for unloading. After unloading is completed, the push plate 11 is reset under the action of the reset spring 12, and the rebound of the compression spring 7 can also drive the baffle 9 to reset through the swivel 8, so that the baffle 9 can block the impurities again. During the resetting process of the baffle 9, the clamping block 5 also rebounds under the action of the clamping spring 4 and escapes from the clamping groove 14. The sleeve 13 no longer rotates with the shaft 202, avoiding the eccentric wheel 15 from continuing to rotate and causing the push plate 11 to cause pressure loss to the compression spring 7. In summary, when in use, the compressed garbage can be automatically discharged and unloaded without manual cleaning.
[0030] See also Figures 2 to 6A treatment tank 16 is provided below the separation box 1, and a partition 17 is provided in the treatment tank 16, and a control valve 18 is provided on the partition 17, a sewage extraction pipe 19 is provided in the treatment tank 16, and a sewage extractor 20 is provided on one side of the treatment tank 16, and a return pipe 21 is provided on one side of the sewage extractor 20, and the return pipe 21 is connected to the water supply pipeline of the water inlet pipe 201, a purification box 22 is provided above the separation box 1, and an air extractor 23 is provided on one side of the purification box 22, and an air extraction pipe 24 is provided on one side of the air extraction machine 23, and one end of the air extraction pipe 24 is connected to a condensation box 25, and the air extraction pipe 24 is connected to the inside of the treatment tank 16, an air intake pipe 26 is provided on one side of the condensation box 25, and a liquid discharge pipe 27 is provided below the condensation box 25, the air intake pipe 26 is connected to the separation box 1, and the liquid discharge pipe 27 is connected to the treatment tank 16;
[0031] The specific operation is as follows. After the wastewater with impurities filtered out enters the treatment tank 16 from the separation box 1, the partition 17 divides the treatment tank 16 into multiple spaces, and the control valve 18 can control the communication between the various spaces, so that the wastewater is transferred, static, and purified in turn. The spaces separated by the partitions 17 on the front and back sides of the treatment tank 16 are overflow chambers to avoid excessive wastewater in the static chamber. The sediment generated during static and purification can be sucked out of the treatment tank 16 by the sewage pump 20 through the sewage pump pipe 19 and sent into the water inlet pipe 201 from the return pipe 21, and it is dried, dehydrated and compressed again to facilitate the cleaning of the sediment in the treatment tank 16. When separating impurities and purifying wastewater, the vacuum pump 2 3 is started, the waste gas in the treatment tank 16 and the separation box 1 can be extracted and sent to the purification box 22 for purification. When the waste gas in the separation box 1 is extracted, the water analysis in the impurities can be accelerated, and the water vapor generated when the impurities are dried can be extracted from the separation box 1 together with the waste gas. After the waste gas carries the water vapor through the air inlet pipe 26 from the separation box 1 into the condensation box 25, the water vapor is condensed and separated from the waste gas and enters the treatment tank 16 through the drain pipe 27 to wait for treatment. The waste gas enters the exhaust pipe 24 and is sent to the purification box 22 for purification. In summary, when in use, the sediment in the treatment tank 16 can be dehydrated and compressed, and the waste gas in the treatment tank 16 and the separation box 1 can be collected and purified.
[0032] In summary, when the wastewater and waste gas treatment structure of the garbage compression station is used, first the wastewater is sent into the water inlet pipe 201, and then the motor 209 is started. The motor 209 can drive the driving wheel 208 to rotate, and then drive the shaft 202 and the screen drum 206 to rotate in the water inlet pipe 201 and the separation box 1 respectively through the transmission wheel 203 and the synchronous gear ring 207, and the rotation direction of the shaft 202 is opposite to that of the screen drum 206. The embedded groove 205 can limit the screen drum 206 to prevent the screen drum 206 from deflecting. The shaft 202 can drive the spiral blade 204 to rotate in the screen drum 206. After the wastewater enters the screen drum 206 from the water inlet pipe 201, the impurities can be intercepted in the screen drum 206. The spiral blade 204 can transport the impurities and squeeze and compress the impurities through the baffle 9. At the same time, the screen drum 206 can drive the impurities to be centrifugally dehydrated, and the heating rod inside the shaft 202 can also heat and dry the impurities through the spiral blades 204 to further dehydrate the impurities. The screen drum 206 rotating in the opposite direction to the spiral blades 204 can also increase the compression rate of the impurities when driving the impurities to move. When compressing the impurities, as the compressed impurities increase, the impurities can push the baffle 9 to slide in the discharge barrel 6, and compress the compression spring 7 through the rotating ring 8. The shaft 202 can limit the baffle 9 to prevent it from deflecting. When the baffle 9 contacts the block 5, the block 5 can be pressed to slide in the rail 3 and stretch the clamping spring 4. After the baffle 9 passes through the through groove 10, the block 5 is pressed into the clamping groove 14 by the baffle 9, and the shaft 202 can pass The card block 5 drives the sleeve 13 to rotate synchronously, so that the sleeve 13 drives the eccentric wheel 15 to rotate on one side of the push plate 11, so that the eccentric wheel 15 presses the push plate 11 to move downward in the through groove 10 and compresses the return spring 12, and the compressed impurities located at the through groove 10 are pushed out from the discharge barrel 6 for unloading. After the unloading is completed, the push plate 11 is reset under the action of the return spring 12, and the compression spring 7 rebounds and can also drive the baffle 9 to reset through the swivel 8, so that the baffle 9 blocks the impurities again. In the process of resetting the baffle 9, the card block 5 also rebounds under the action of the clamping spring 4 and escapes from the card slot 14. The sleeve 13 no longer rotates with the shaft 202, so as to avoid the eccentric wheel 15 continuing to rotate and causing the push plate 11 to cause pressure loss on the compression spring 7. After the high-quality wastewater enters the treatment tank 16 from the separation box 1, the partition 17 divides the treatment tank 16 into multiple spaces, and the control valve 18 can control the communication between the various spaces, so that the wastewater is transferred, static, and purified in turn, and the spaces separated by the partitions 17 on the front and back sides of the treatment tank 16 are overflow chambers to avoid excessive wastewater in the static chamber. The sediment generated during static and purification can be sucked out of the treatment tank 16 by the sewage pump 20 through the sewage pump pipe 19 and sent to the water inlet pipe 201 from the return pipe 21, and it is dried, dehydrated and compressed again, so as to facilitate the cleaning of the sediment in the treatment tank 16. When separating impurities and purifying wastewater, the vacuum pump 23 is started to suck out the waste gas in the treatment tank 16 and the separation box 1 and send it to the purification box 22 for purification.When the waste gas in the separation box 1 is extracted, the water in the impurities can be accelerated to separate out, and the water vapor generated when drying the impurities can be extracted from the separation box 1 together with the waste gas. After the waste gas carries the water vapor through the air inlet pipe 26 from the separation box 1 into the condensation box 25, the water vapor is condensed and separated from the waste gas and enters the treatment pool 16 through the drain pipe 27 to wait for treatment. The waste gas enters the exhaust pipe 24 and is sent to the purification box 22 for purification.
[0033] The embodiments of the present invention are given for the purpose of illustration and description, and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are selected and described in order to better illustrate the principles and practical applications of the present invention and to enable those of ordinary skill in the art to understand the present invention and thereby design various embodiments with various modifications suitable for specific uses.
Claims
1. A wastewater and waste gas treatment structure for a garbage compression station, characterized in that: The invention comprises a separation box (1) and a filter assembly (2), wherein the filter assembly (2) is arranged in the middle of the separation box (1), and the filter assembly (2) comprises a water inlet pipe (201), a shaft (202), a transmission wheel (203), a spiral blade (204), an embedded groove (205), a screen drum (206), a synchronous gear ring (207), a driving wheel (208) and a motor (209); a water inlet pipe (201) is arranged on one side of the separation box (1), and a shaft (202) is rotatably connected in the water inlet pipe (201), and the shaft (202) is One end of the shaft (202) is connected to a transmission wheel (203), and a spiral blade (204) is arranged on the outer side of the shaft (202), and a groove (205) is symmetrically arranged in the separation box (1), and a screen drum (206) is embedded and connected in the groove (205), and a synchronous gear ring (207) is arranged on the side of the screen drum (206) close to the water inlet pipe (201), and a driving wheel (208) is arranged between the synchronous gear ring (207) and the transmission wheel (203), and a motor (209) is arranged below the driving wheel (208).
2. A wastewater and waste gas treatment structure for a garbage compression station according to claim 1, characterized in that: The sieve drum (206) is rotatably connected to the separation box (1) via an embedded groove (205), and micropores are provided on the surface of the sieve drum (206). The synchronous gear ring (207) and the transmission wheel (203) are both meshed with the driving wheel (208), and a heating rod is provided in the shaft (202).
3. A wastewater and waste gas treatment structure for a garbage compression station according to claim 1, characterized in that: The other end of the shaft rod (202) is symmetrically provided with a rail (3), and a clamping spring (4) is connected inside the rail (3); the other end of the clamping spring (4) is connected to a clamping block (5), and the clamping block (5) is elastically connected to the rail (3) through the clamping spring (4); the clamping block (5) is slidably connected to the shaft rod (202) through the clamping rail (3).
4. A wastewater and waste gas treatment structure for a garbage compression station according to claim 3, characterized in that: The other side of the separation box (1) is connected to a discharge barrel (6), and a compression spring (7) is symmetrically connected inside the discharge barrel (6). The other end of the compression spring (7) is connected to a swivel (8), and one side of the swivel (8) is rotatably connected to a baffle (9).
5. A wastewater and waste gas treatment structure for a garbage compression station according to claim 4, characterized in that: A through slot (10) is provided in the middle of the discharge barrel (6), and a push plate (11) is snap-fitted into the through slot (10). Return springs (12) are symmetrically connected to both sides of the push plate (11), and the push plate (11) is elastically connected to the discharge barrel (6) via the return spring (12).
6. A wastewater and waste gas treatment structure for a garbage compression station according to claim 5, characterized in that: The side of the discharge barrel (6) away from the separation box (1) is rotatably connected with a sleeve (13), and a clamping groove (14) is symmetrically provided on the inner side of the sleeve (13). The discharge barrel (6) is provided with an eccentric wheel (15) on one side of the push plate (11).
7. A wastewater and waste gas treatment structure for a garbage compression station according to claim 6, characterized in that: The sleeve (13) is sleeved on one end of the shaft (202) where the clamping rail (3) is opened, and the clamping block (5) is clamped and linked with the clamping rail (3) through a clamping groove (14), and the sleeve (13) is connected with the eccentric wheel (15) through a belt and a pulley.
8. The wastewater and waste gas treatment structure of a garbage compression station according to claim 1 is characterized in that: A treatment tank (16) is provided below the separation box (1), and a partition (17) is provided in the treatment tank (16), a control valve (18) is provided on the partition (17), a sewage extraction pipe (19) is provided in the treatment tank (16), and a sewage extraction machine (20) is provided on one side of the treatment tank (16), a return pipe (21) is provided on one side of the sewage extraction machine (20), and the return pipe (21) is connected to the water supply pipeline of the water inlet pipe (201).
9. A wastewater and waste gas treatment structure for a garbage compression station according to claim 8, characterized in that: A purification box (22) is arranged above the separation box (1), and an exhaust fan (23) is arranged on one side of the purification box (22). An exhaust pipe (24) is arranged on one side of the exhaust fan (23), and one end of the exhaust pipe (24) is connected to a condensation box (25). The exhaust pipe (24) is connected to the inside of the treatment pool (16).
10. A wastewater and waste gas treatment structure for a garbage compression station according to claim 9, characterized in that: An air inlet pipe (26) is provided on one side of the condensation box (25), and a liquid discharge pipe (27) is provided below the condensation box (25); the air inlet pipe (26) is in communication with the separation box (1), and the liquid discharge pipe (27) is in communication with the treatment tank (16).