Rapid centrifugal dialysis purification equipment for treating sewage

By designing the sewage rapid centrifugal dialysis purification equipment for separation, cleaning and adjustment devices, the problem of sediment accumulation is solved, automatic discharge and manual cleaning are achieved, and human work costs are reduced.

CN223087641UActive Publication Date: 2025-07-11CHONGQING LINDE TECH DEV CO LTD
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Patent Information

Application Number
CN202421612432.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-09
Publication Date
2025-07-11
Estimated Expiration
2034-07-09

AI Technical Summary

Technical Problem

After separating sewage from sewage, sewage is easily accumulated on the inner wall of the bottom of the equipment, and requires manual cleaning, which increases the cost of work for humans.

Method used

A sewage rapid centrifugal dialysis purification device including separation, cleaning, adjustment and buffering devices is designed. By changing the equipment angle, the silt and sand are slid and accumulated and automatically discharged. Combined with the water flow erosion of the cleaning device and the vibration buffering of the buffering device, manual intervention is reduced.

Benefits of technology

It realizes automatic discharge of silt and sand, reduces damage to parts by human work strength and equipment vibration, and reduces manual cleaning costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses rapid centrifugal dialysis purification equipment for treating sewage, which comprises a shell, a separation device, a centrifugal dialysis device, a centrifugal dialysis device, a centrifugal dialysis device, a centrifugal dialysis device, a centrifugal dialysis device, a centrifugal dialysis device, a centrifugal dialysis device, a centrifugal dialysis device, a centrifugal dialysis device and a control device, and is characterized in that a valve is mounted in the shell; the cleaning device is arranged above the valve; and the adjusting device is mounted below the shell. The utility model relates to the technical field of sewage treatment, and discloses rapid centrifugal dialysis purification equipment for treating sewage, which solves the problem of high manpower consumption in cleaning silt in the equipment through an adjusting device, and can change the inclination angle of the treatment equipment by using the adjusting device after sewage separation is finished, so that the treatment efficiency is improved. At the moment, silt in the treatment equipment slides to the corner under the influence of gravity and is accumulated together, then a worker opens the wall door at the corner of the equipment, the silt falls out of the treatment equipment through the opening without being blocked by the wall door, manual intervention is not needed, and therefore the manual operation intensity is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of sewage treatment, in particular to a rapid centrifugal dialysis purification device for treating sewage. Background Technique

[0002] Sewage treatment is a process of purifying sewage to meet the water quality requirements for discharging it into a certain water body or reusing it. Sewage treatment is widely used in various fields such as construction, agriculture, transportation, energy, petrochemical, environmental protection, urban landscape, medical treatment, and catering, and is also increasingly entering the daily lives of ordinary people.

[0003] At present, when staff conduct sewage treatment, workers first connect the sewage discharge device to the treatment device, and then the treatment device will separate the sewage discharged from the sewage discharge device. The treatment device will store the sediment in the sewage inside the device. Finally, after the sewage is separated, it will be discharged from the inside of the treatment device to complete the sewage treatment operation.

[0004] In traditional sewage treatment operations, most staff use centrifugal force to separate sewage from sediment. This causes sediment to remain inside the treatment device when the sewage is discharged. Workers then need to clean the sediment inside the treatment device. Since this sediment accumulates on the inner wall of the bottom of the device due to gravity, it takes workers a relatively long time to clean it up, thus increasing the labor operation cost. Content of the Utility Model

[0005] Aiming at the deficiencies of the prior art, the utility model provides a rapid centrifugal dialysis purification device for treating sewage, which solves the problem that in traditional sewage treatment operations, most staff use centrifugal force to separate sewage from sediment. This causes sediment to remain inside the treatment device when the sewage is discharged. Workers then need to clean the sediment inside the treatment device. Since this sediment accumulates on the inner wall of the bottom of the device due to gravity, it takes workers a relatively long time to clean it up, thus increasing the labor operation cost.

[0006] To achieve the above object, the utility model is realized through the following technical solutions: A rapid centrifugal dialysis purification device for treating sewage, including a housing, a valve is installed on the inner wall of the housing. The rapid centrifugal dialysis purification device for treating sewage further includes: a separation device installed inside the housing; a cleaning device arranged above the valve; an adjusting device installed below the housing; a buffer device arranged below the adjusting device; wherein, the separation device can separate the sediment in the sewage from the water source, the cleaning device can clean the inside of the separation device, the adjusting device can adjust the angle of the housing, and the buffer device can play a buffering role for the entire rapid centrifugal dialysis purification device for treating sewage.

[0007] Preferably, the separation device includes: a first servo motor installed on the outer wall of the housing; a storage tank rotatably connected to the inner wall of the housing at both ends and detachably connected to the output end of the first servo motor on the side away from the valve; a joint rotatably connected to the side of the storage tank away from the first servo motor; two filters both provided on the outer wall of the storage tank; wherein, the first servo motor can drive the storage tank and the filters to rotate, and the joint is used to connect to the sewage disposal equipment.

[0008] Preferably, the cleaning device includes: a plurality of horizontal pipes respectively installed on the outer walls of the two filters and all attached to the outer wall of the storage tank; a plurality of insertion rods respectively slidably clamped inside the plurality of horizontal pipes and all inserted into the storage tank; a plurality of first springs respectively installed inside the plurality of horizontal pipes and respectively abutted against the outer walls of the plurality of insertion rods; a water pipe installed on the inner wall of the housing; a plurality of high-pressure nozzles evenly communicated with the outer wall of the water pipe; wherein, when the insertion rod moves along the inner wall of the horizontal pipe, it will compress the first spring, and the water pipe can spray the external water through the high-pressure nozzles to clean the separation device.

[0009] Preferably, the adjusting device includes: a first support plate attached to the bottom of the housing; a second servo motor installed on the outer wall of the first support plate; a threaded rod rotatably connected to the inner wall of the first support plate and detachably connected to the output end of the second servo motor; a connection block threadedly connected to the outer wall of the threaded rod; a slide rail installed on the outer wall of the housing; a slider slidably clamped on the outer wall of the slide rail and rotatably connected to the outer wall of the connection block through a pin shaft; a second support plate rotatably connected to the outer wall of the housing through a pin shaft and fixedly connected to the bottom of the first support plate; wherein, the second servo motor can drive the connection block to slide along the outer wall of the threaded rod, and then drive the slider to slide along the outer wall of the slide rail.

[0010] Preferably, the buffer device includes: a plurality of support rods all installed at the bottom of the second support plate; a plurality of second springs respectively sleeved on the outer walls of the plurality of support rods; a plurality of vertical pipes respectively sleeved on the outer walls of the plurality of support rods and respectively abutted against the bottoms of the plurality of second springs; a plurality of vertical rods respectively installed on the outer side walls of the plurality of support rods; a plurality of horizontal plates respectively installed on the outer side walls of the plurality of vertical pipes and respectively sleeved on the outer walls of the plurality of vertical rods; a bottom plate installed at the bottoms of the plurality of vertical pipes; wherein, when the support rod moves along the inner wall of the vertical pipe, it will compress the second spring, and then drive the vertical rod to move along the inner wall of the horizontal plate.

[0011] Beneficial effects

[0012] The utility model provides a rapid centrifugal dialysis purification device for treating sewage, which has the following beneficial effects: the rapid centrifugal dialysis purification device for treating sewage solves the problem of consuming a large amount of manpower to clean the sediment inside the device through an adjusting device. When the sewage separation is completed, the adjusting device can be used to change the inclination angle of the treatment device. At this time, the sediment inside the treatment device will slide to the corner and accumulate together under the influence of gravity. Then, the worker opens the wall door at the corner of the device. At this time, the sediment will fall outside the treatment device through the opening without the obstruction of the wall door, without manual intervention, thus reducing the manual operation intensity.

[0013] Through the cleaning device, the sediment attached to the inner wall of the treatment device can be washed to the bottom by water flow, and then combined with the adjusting device, the sediment can be directly discharged outside the device without manual cleaning of the inner wall of the device, thereby reducing the manual operation intensity. Through the buffer device, the vibration generated during the separation operation of the device can be buffered, avoiding excessive amplitude of the device from damaging its internal parts, and thus increasing the sewage treatment cost. Description of the Drawings

[0014] Figure 1 It is a schematic structural diagram of the utility model;

[0015] Figure 2 is Figure 1 the sectional view of;

[0016] Figure 3 is Figure 2 the schematic structural diagram of the cross bar, the insertion rod and the first spring in;

[0017] Figure 4 is Figure 2 the schematic structural diagram of the support rod, the second spring and the vertical pipe in.

[0018] In the figure: 1. outer shell, 2. valve, 3. separation device, 301. first servo motor, 302. storage tank, 303. joint, 304. filter screen, 4. cleaning device, 401. horizontal pipe, 402. insertion rod, 403. first spring, 404. water pipe, 405. high-pressure nozzle, 5. adjusting device, 501. first support plate, 502. second servo motor, 503. threaded rod, 504. connecting block, 505. slider, 506. slide rail, 507. second support plate, 6. buffer device, 601. support rod, 602. second spring, 603. vertical pipe, 604. vertical rod, 605. horizontal plate, 606. bottom plate. Detailed Embodiment

[0019] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative work belong to the scope of protection of the present utility model.

[0020] By those skilled in the art, the components in this case are connected in sequence. For the specific connection and operation sequence, reference should be made to the following working principle. The detailed connection means are well-known techniques in the art. The following mainly introduces the working principle and process.

[0021] In traditional sewage treatment operations, most workers separate sewage and sediment through centrifugal force. This causes sediment to remain inside the treatment equipment when the sewage is discharged from the treatment equipment, and workers need to clean the sediment inside the treatment equipment again. Because this sediment accumulates on the inner wall of the bottom of the equipment under the influence of gravity, it takes workers a relatively long time to clean it up, thereby increasing the manual operation cost.

[0022] In view of this, the present utility model provides a rapid centrifugal dialysis purification device for treating sewage. The rapid centrifugal dialysis purification device for treating sewage solves the problem of consuming a large amount of manpower to clean the sediment inside the equipment through an adjustment device. When the sewage separation is completed, the adjustment device can be used to change the inclination angle of the treatment equipment. At this time, the sediment inside the treatment equipment will slide to the corner and accumulate together under the influence of gravity. Then the worker opens the wall door at the corner of the equipment. At this time, the sediment will fall outside the treatment equipment through the opening without the obstruction of the wall door, without manual intervention, thereby reducing the manual operation intensity.

[0023] Embodiment 1: Consisting of Figure 1 、 2As can be seen from Figures 3 and 4, a rapid centrifugal dialysis purification device for treating sewage includes a housing 1, and a valve 2 is installed on the inner wall of the housing 1. The rapid centrifugal dialysis purification device for treating sewage further includes: a separation device 3 installed inside the housing 1; a cleaning device 4 arranged above the valve 2; an adjusting device 5 installed below the housing 1; a buffer device 6 arranged below the adjusting device 5. A wall door is installed on the outer walls of the housing 1 and the separation device 3, and the sediment inside the device can be discharged to the outside of the device through the wall door. After the treated water source is discharged from the separation device 3, it will be discharged from the inside of the housing 1 through the valve 2 installed on the housing 1. The buffer device 6 can buffer the vibration generated during the separation operation of the device, avoiding damage to its internal parts caused by excessive amplitude of the device. Among them, the separation device 3 can separate the sediment from the water source in the sewage, the cleaning device 4 can clean the inside of the separation device 3, the adjusting device 5 can adjust the angle of the housing 1, and the buffer device 6 can play a buffering role for the entire rapid centrifugal dialysis purification device for treating sewage;

[0024] In the specific implementation process, it is particularly worth noting that a wall door is installed on the outer walls of the housing 1 and the separation device 3, and the sediment inside the device can be discharged to the outside of the device through the wall door. After the treated water source is discharged from the separation device 3, it will be discharged from the inside of the housing 1 through the valve 2 installed on the housing 1. The buffer device 6 can buffer the vibration generated during the separation operation of the device, avoiding damage to its internal parts caused by excessive amplitude of the device;

[0025] Specifically, when using this rapid centrifugal dialysis purification device for treating sewage, the staff first connects the sewage discharge to the separation device 3, then discharges the sewage into the inside of the separation device 3, and then the worker starts the separation device 3. After the separation device 3 is powered on, it starts to rotate. At this time, the sewage inside the separation device 3 is affected by the rotation of the separation device 3, and the sediment and the water source in the sewage will be separated. The treated water source will be discharged from the separation device 3, and the sediment in the sewage will remain inside the separation device 3. When the sewage treatment is completed, the worker turns off the separation device 3, and then starts the adjusting device 5. When the adjusting device 5 tilts the angle of the housing 1 to a certain extent, the worker controls the adjusting device 5 to stop working, and at the same time opens the wall door between the separation device 3 and the housing 1. At this time, the sediment will be discharged from the inside of the device under the influence of gravity through the wall door between the separation device 3 and the housing 1. At the same time, the worker injects external water into the cleaning device 4, and the cleaning device 4 can clean the sediment attached to the inner wall of the separation device 3. Finally, these sediments will also be discharged from the inside of the device through the wall door between the separation device 3 and the housing 1.

[0026] Example 2: From Figure 1 and 2It can be seen that the separation device 3 includes: a first servo motor 301, the model of the first servo motor 301 is: ECMA-E11320RS, which is installed on the outer wall of the housing 1; a storage tank 302, both ends of which are rotatably connected to the inner wall of the housing 1 through bearings, and the side far from the valve 2 is detachably connected to the output end of the first servo motor 301; a joint 303, which is rotatably connected to the side of the storage tank 302 far from the first servo motor 301 through a bearing; two filter nets 304, both of which are arranged on the outer wall of the storage tank 302; a wall door is installed on the outer wall of the storage tank 302, and the sediment inside the storage tank 302 can be discharged from the storage tank 302 through the wall door. When the filter net 304 is used in cooperation with the cleaning device 4, the filter net 304 can be disassembled, and it is convenient to replace the filter net 304 after disassembly; among them, the first servo motor 301 can drive the storage tank 302 and the filter net 304 to rotate, and the joint 303 is used to connect the sewage discharge equipment;

[0027] In the specific implementation process, it is particularly worth noting that a wall door is installed on the outer wall of the storage tank 302, and the sediment inside the storage tank 302 can be discharged from the storage tank 302 through the wall door. When the filter net 304 is used in cooperation with the cleaning device 4, the filter net 304 can be disassembled, and it is convenient to replace the filter net 304 after disassembly;

[0028] Specifically, on the basis of the above-mentioned Embodiment 1, when separating sewage, the staff first inserts the sewage discharge equipment into the inside of the joint 303, then discharges the sewage into the separation device 3 through the joint 303, and then the worker starts the first servo motor 301 through an external power supply. After the first servo motor 301 is powered on, it starts to rotate, and at the same time drives the storage tank 302 to rotate along the inner wall of the housing 1 through a bearing. At this time, the sewage inside the storage tank 302 starts to rotate under the influence of the rotation of the storage tank 302. Since the filter net 304 is arranged on the outer wall of the storage tank 302, the filter net 304 will block the sediment in the sewage. After the sewage is filtered by the filter net 304, it will be discharged from the inside of the separation device 3 and finally discharged from the housing 1 through the valve 2.

[0029] Embodiment Three: Consisting of Figure 1 、 2As can be seen from FIGS. 1 and 3, the cleaning device 4 includes: a plurality of horizontal pipes 401, which are respectively installed on the outer walls of the two filter nets 304 and are all in contact with the outer wall of the storage tank 302; a plurality of inserting rods 402, which are respectively slidably clamped inside the plurality of horizontal pipes 401 and are all inserted into the storage tank 302; a plurality of first springs 403, which are respectively installed inside the plurality of horizontal pipes 401 and are respectively abutted against the outer walls of the plurality of inserting rods 402; a water pipe 404, which is installed on the inner wall of the housing 1; a plurality of high-pressure nozzles 405, which are evenly communicated with the outer wall of the water pipe 404; when installing the filter net 304, the worker first pulls the inserting rod 402 until the inserting rod 402 retracts into the horizontal pipe 401, then the worker places the filter net 304 on the outer wall of the storage tank 302, and then releases the inserting rod 402. At this time, the first spring 403 returns to its original state without force and pushes the inserting rod 402 to insert into the outer wall of the storage tank 302, completing the limiting operation of the filter net 304; among them, when the inserting rod 402 moves along the inner wall of the horizontal pipe 401, the first spring 403 will be compressed, and the water pipe 404 can spray the external water through the high-pressure nozzles 405 to clean the separation device 3;

[0030] In the specific implementation process, it is particularly pointed out that when installing the filter net 304, the worker first pulls the inserting rod 402 until the inserting rod 402 retracts into the horizontal pipe 401, then the worker places the filter net 304 on the outer wall of the storage tank 302, and then releases the inserting rod 402. At this time, the first spring 403 returns to its original state without force and pushes the inserting rod 402 to insert into the outer wall of the storage tank 302, completing the limiting operation of the filter net 304.

[0031] Specifically, on the basis of the above-mentioned Embodiment 1, when the sewage treatment is completed and the staff needs to clean the inside of the separation device 3, first, the staff pulls the inserting rod 402, and the inserting rod 402 starts to move along the inner wall of the horizontal pipe 401 under force. At the same time, the first spring 403 starts to contract under the pressure of the inserting rod 402 until the inserting rod 402 disengages from the outer wall of the storage tank 302. At this time, the worker can take out the filter net 304 from the outer wall of the storage tank 302. Then the worker injects external water into the water pipe 404, and the external water will flow into the inside of the plurality of high-pressure nozzles 405 through the water pipe 404, and then be sprayed out through the high-pressure nozzles 405. The sprayed external water will enter the inside of the storage tank 302 and clean the sand and stones remaining on the inner wall of the storage tank 302, and finally be discharged through the wall door installed on the outer wall of the storage tank 302.

[0032] Embodiment 4: Consisting of Figure 1 and 2It can be seen that the adjusting device 5 includes: a first support plate 501, which is attached to the bottom of the housing 1; a second servo motor 502, the model of the second servo motor 502 is: ECMA - E11320RS, which is installed on the outer wall of the first support plate 501; a threaded rod 503, which is rotatably connected to the inner wall of the first support plate 501 through a bearing and is detachably connected to the output end of the second servo motor 502; a connecting block 504, which is threadedly connected to the outer wall of the threaded rod 503; a slide rail 506, which is installed on the outer wall of the housing 1; a slider 505, which is slidably clamped on the outer wall of the slide rail 506 and is rotatably connected to the outer wall of the connecting block 504 through a pin; a second support plate 507, which is rotatably connected to the outer wall of the housing 1 through a pin and is fixedly connected to the bottom of the first support plate 501; the slideway of the slide rail 506 is an inclined plane, the slideway near the second servo motor 502 is lower than the slideway on the other side. When the slider 505 is forced to move along the outer wall of the slide rail 506 away from the second servo motor 502, the separating device 3 and the housing 1 will be jacked up. When the slider 505 moves along the outer wall of the slide rail 506 towards the second servo motor 502, the separating device 3 and the housing 1 begin to fall back until the housing 1 is in contact with the first support plate 501; among them, the second servo motor 502 can drive the connecting block 504 to slide along the outer wall of the threaded rod 503, thereby driving the slider 505 to slide along the outer wall of the slide rail 506;

[0033] In the specific implementation process, it is particularly worth noting that the slideway of the slide rail 506 is an inclined plane, the slideway near the second servo motor 502 is lower than the slideway on the other side. When the slider 505 is forced to move along the outer wall of the slide rail 506 away from the second servo motor 502, the separating device 3 and the housing 1 will be jacked up. When the slider 505 moves along the outer wall of the slide rail 506 towards the second servo motor 502, the separating device 3 and the housing 1 begin to fall back until the housing 1 is in contact with the first support plate 501;

[0034] Specifically, based on the above-mentioned first embodiment, when the staff wants to adjust the angle of the outer shell 1, first start the second servo motor 502 through an external power supply. After the second servo motor 502 is powered on, it starts to rotate and drives the threaded rod 503 to rotate along the inner wall of the first support plate 501. Since the connecting block 504 is threadedly connected to the outer wall of the threaded rod 503, when the threaded rod 503 rotates under force, it will drive the connecting block 504 to slide along the outer wall of the threaded rod 503. Also, since the connecting block 504 is rotatably connected to the slider 505 through a pin shaft, when the connecting block 504 moves, it will drive the slider 505 to slide along the outer wall of the slide rail 506. At this time, the outer shell 1 will be lifted under the influence of the slider 505. Since one side of the outer shell 1 away from the second servo motor 502 is rotatably connected to the second support plate 507 through a pin shaft, the whole outer shell 1 begins to tilt. At this time, the separation device 3 tilts simultaneously under the influence of the outer shell 1. The sediment inside the separation device 3 will slide to the corner and accumulate under the influence of gravity. Then, open the wall door between the separation device 3 and the outer shell 1 to discharge the sediment inside the device.

[0035] Embodiment Five: From Figure 1 , 2 and 4, it can be seen that the buffer device 6 includes: support rods 601, a plurality of which are provided and are all installed at the bottom of the second support plate 507; second springs 602, a plurality of which are provided and are respectively sleeved on the outer walls of the plurality of support rods 601; vertical pipes 603, a plurality of which are provided, are respectively sleeved on the outer walls of the plurality of support rods 601, and are respectively abutted against the bottoms of the plurality of second springs 602; vertical rods 604, a plurality of which are provided and are respectively installed on the outer walls on both sides of the plurality of support rods 601; cross plates 605, a plurality of which are provided and are respectively installed on the outer walls on both sides of the plurality of vertical pipes 603, and are respectively sleeved on the outer walls of the plurality of vertical rods 604; a bottom plate 606, which is installed at the bottoms of the plurality of vertical pipes 603; a damper is installed on the outer wall of the vertical rod 604. When the support rod 601 moves along the inner wall of the vertical pipe 603, it will simultaneously drive the vertical rod 604 to move along the inner wall of the cross plate 605. Through the friction between the vertical rod 604 and the cross plate 605, the elastic potential energy generated by the second spring 602 can be consumed, so that the second spring 602 can quickly stabilize; among them, when the support rod 601 moves along the inner wall of the vertical pipe 603, it will compress the second spring 602, and then drive the vertical rod 604 to move along the inner wall of the cross plate 605;

[0036] In the specific implementation process, it is particularly worth pointing out that a damper is installed on the outer wall of the vertical rod 604. When the support rod 601 moves along the inner wall of the vertical pipe 603, it will simultaneously drive the vertical rod 604 to move along the inner wall of the cross plate 605. Through the friction between the vertical rod 604 and the cross plate 605, the elastic potential energy generated by the second spring 602 can be consumed, so that the second spring 602 can quickly stabilize;

[0037] Specifically, on the basis of the above-mentioned first embodiment, when the separation device 3 rotates, it will drive the overall rapid centrifugal dialysis purification equipment for treating sewage to vibrate. At this time, the support rod 601 starts to move downward along the inner wall of the vertical pipe 603 under force, and at the same time, the second spring 602 starts to contract under the influence of the movement of the support rod 601. By compressing the second spring 602, the vibration received by the overall rapid centrifugal dialysis purification equipment for treating sewage can be buffered, avoiding damage to its internal parts caused by excessive amplitude. When the separation device 3 stops operating, at this time, the second spring 602 is no longer affected by the vibration, starts to restore its original shape, and pushes the support rod 601 to drive the second support plate 507 back to its original position.

[0038] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation. An element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.

[0039] In the present invention, unless otherwise clearly specified and defined, terms such as "installation", "setting", "connection", "fixation", "rotation connection", etc. should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements or the interaction relationship between two elements. Unless otherwise clearly defined, for those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0040] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A rapid centrifugal dialysis purification device for treating sewage, comprising a housing (1), characterized in that: A valve (2) is installed on the inner wall of the housing (1). The sewage treatment rapid centrifugal dialysis purification equipment further includes: A separation device (3), installed inside the housing (1); A cleaning device (4), arranged above the valve (2); An adjusting device (5), installed below the housing (1); A buffer device (6), arranged below the adjusting device (5); Among them, the separation device (3) can separate the sediment in the sewage from the water source, the cleaning device (4) can clean the inside of the separation device (3), the adjusting device (5) can adjust the angle of the housing (1), and the buffer device (6) can buffer the whole sewage treatment rapid centrifugal dialysis purification equipment.

2. The rapid centrifugal dialysis purification equipment for treating sewage according to claim 1, characterized in that: The separation device (3) includes: A first servo motor (301), installed on the outer wall of the housing (1); A storage tank (302), both ends of which are rotatably connected to the inner wall of the housing (1) through bearings, and the side far from the valve (2) is detachably connected to the output end of the first servo motor (301); A connector (303), rotatably connected to the side of the storage tank (302) far from the first servo motor (301) through a bearing; Two filter meshes (304), both of which are arranged on the outer wall of the storage tank (302); Among them, the first servo motor (301) can drive the storage tank (302) and the filter meshes (304) to rotate, and the connector (303) is used to connect the sewage discharge equipment.

3. A rapid centrifugal dialysis purification device for treating sewage according to claim 2, characterized in that: The cleaning device (4) includes: Multiple horizontal pipes (401), respectively installed on the outer walls of the two filter meshes (304), and all are in contact with the outer wall of the storage tank (302); Multiple insertion rods (402), respectively slidably clamped inside the multiple horizontal pipes (401), and all are inserted into the storage tank (302); Multiple first springs (403), respectively installed inside the multiple horizontal pipes (401), and respectively abutted against the outer walls of the multiple insertion rods (402); A water pipe (404), installed on the inner wall of the housing (1); Multiple high-pressure nozzles (405), and all are equidistantly communicated with the outer wall of the water pipe (404); Among them, when the insertion rod (402) moves along the inner wall of the horizontal pipe (401), it will compress the first spring (403), and the water pipe (404) can spray the external water through the high-pressure nozzles (405) to clean the separation device (3).

4. A rapid centrifugal dialysis purification device for treating sewage according to claim 1, characterized in that: The adjusting device (5) includes: A first support plate (501), attached to the bottom of the housing (1); A second servo motor (502), installed on the outer wall of the first support plate (501); A threaded rod (503), rotatably connected to the inner wall of the first support plate (501) through a bearing, and detachably connected to the output end of the second servo motor (502); A connection block (504), threadedly connected to the outer wall of the threaded rod (503); A slide rail (506), installed on the outer wall of the housing (1); The slider (505) is slidably clamped to the outer wall of the slide rail (506) and is rotatably connected to the outer wall of the connecting block (504) through a pin shaft; The second support plate (507) is rotatably connected to the outer wall of the housing (1) through a pin shaft and is fixedly connected to the bottom of the first support plate (501); Wherein, the second servo motor (502) can drive the connecting block (504) to slide along the outer wall of the threaded rod (503), thereby driving the slider (505) to slide along the outer wall of the slide rail (506).

5. A sewage treatment rapid centrifugal dialysis purification device according to claim 4, characterized in that: The buffer device (6) includes: The support rods (601) are provided in plurality and are all installed at the bottom of the second support plate (507); The second springs (602) are provided in plurality and are respectively sleeved on the outer walls of the plurality of support rods (601); The vertical pipes (603) are provided in plurality, are respectively sleeved on the outer walls of the plurality of support rods (601), and are respectively abutted against the bottoms of the plurality of second springs (602); The vertical rods (604) are provided in plurality and are respectively installed on the outer walls on both sides of the plurality of support rods (601); The horizontal plates (605) are provided in plurality, are respectively installed on the outer walls on both sides of the plurality of vertical pipes (603), and are respectively sleeved on the outer walls of the plurality of vertical rods (604); The bottom plate (606) is installed at the bottoms of the plurality of vertical pipes (603); Wherein, when the support rod (601) moves along the inner wall of the vertical pipe (603), the second spring (602) will be compressed, thereby driving the vertical rod (604) to move along the inner wall of the horizontal plate (605).