Sewage treatment combined device

Through the combined use of anti-winding, wave impact, anti-pollution and anti-bacteria devices, the problems of impurity blockage and low treatment efficiency in sewage treatment equipment are solved, and the sewage treatment effect of impurity separation, anti-blocking and environmental safety is achieved.

CN120589984APending Publication Date: 2025-09-05SHENZHEN SHAOGUANG MECHANICAL & ELECTRICAL INSTALLATION ENGINEERING CO LTD
View PDF 9 Cites 0 Cited by

Patent Information

Application Number
CN202510824155.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-09-05

AI Technical Summary

Technical Problem

Existing sewage treatment equipment is prone to clogging pipes due to non-magnetic impurities during transportation, causing the sewage treatment system to be paralyzed, and fails to effectively prevent linear impurities from entangled in the filter screen, affecting treatment efficiency.

Method used

An anti-winding device, a wave-impact device, an anti-pollution device and an anti-bacteria device have been designed. These devices use blades to cut linear impurities, a stirring plate to stir colloidal dirt, and an activated carbon filter plate to filter harmful gases and perform heat sterilization. A magnetic suction box is used to separate ferrous impurities, prevent impurity blockage and improve processing efficiency.

Benefits of technology

Effectively separate and collect different types of impurities, prevent filter clogging, improve sewage treatment efficiency, reduce maintenance costs, ensure a safe working environment, and extend the life of the device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120589984A_ABST
    Figure CN120589984A_ABST
Patent Text Reader

Abstract

The invention discloses a sewage treatment combined device, and relates to the field of sewage treatment.The sewage treatment combined device comprises a device body, a sliding groove is formed in the bottom of the inner wall of the device body, a spring is arranged in the sliding groove, a magnetic suction box is arranged on the left side of the device body, and a conveying pipe is arranged on the left side of the magnetic suction box; the anti-winding device comprises a water inlet pipe, a filter screen and an anti-winding assembly, the right side of the water inlet pipe penetrates through and is fixedly installed on the left side of the device body, the outer wall of the filter screen is fixedly installed on the right side of the inner wall of the water inlet pipe, the anti-winding assembly is arranged on the left side of the filter screen and comprises a rotating column and blades, and the right side of the rotating column is rotationally installed in the center of the left side of the filter screen. According to the device, impact force of water flow enables the blades to generate rotating force to start rotating, the blades can cut line impurities in sewage, line dirt is prevented from being wound on the surface of the filter screen, and the filter screen is further prevented from being blocked.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of sewage treatment, in particular to a sewage treatment combined device. Background Art

[0002] With the continuous development of the economy and society, the total amount of sewage discharged is increasing, the difficulty of treatment is increasing, and the pressure on the sewage treatment system is increasing. In particular, there are a lot of magnetic impurities such as iron filings in the sewage discharged by factories, which can easily cause the sewage treatment system to be paralyzed.

[0003] Patent announcement number CN208327697U discloses a sewage treatment assembly, including a magnetic disk adsorption box and a filter box. The magnetic disk adsorption box is fixedly placed on the top of the filter box. The middle of one side of the magnetic disk adsorption box is connected to the inlet end of the filter box through a connecting pipe. The middle of the other side of the magnetic disk adsorption box is connected through an inlet pipe. The tops of both sides are connected through a first scraper pipe and a second scraper pipe. A motor is fixedly installed in the middle of the side of the magnetic disk adsorption box. A rotating shaft is connected through the middle of the inner wall of the magnetic disk adsorption box. One end of the rotating shaft is transmission-connected to the output end of the motor. A magnetic disk is installed in the middle of the rotating shaft. One end of the first scraper pipe and one end of the second scraper pipe are in contact with the tops of both sides of the magnetic disk, respectively. This patent can effectively separate magnetic impurities from non-magnetic impurities in wastewater by cooperating with the magnetic disk adsorption box and the filter box, making it easy to recycle magnetic impurities such as iron filings.

[0004] However, this device still has some shortcomings: when the device transports sewage from the magnetic disk adsorption box to the filter box, the non-magnetic impurities in the sewage block the conveying pipe, causing the conveying pipe to malfunction and delaying the sewage treatment progress. Therefore, it is necessary to design a sewage treatment combination device that can cut the linear impurities in the sewage with a blade to prevent the linear dirt from being entangled on the surface of the filter. Summary of the Invention

[0005] The object of the present invention is to provide a sewage treatment assembly to solve the problems raised in the above background technology.

[0006] In order to solve the above technical problems, the present invention provides the following technical solutions: a sewage treatment combination device, comprising a device body, a slide groove is provided at the bottom of the inner wall of the device body, and a spring is provided inside the slide groove, a magnetic box is provided on the left side of the device body, and a conveying pipe is provided on the left side of the magnetic box. The sewage is conveyed into the magnetic box through the conveying pipe, and the iron impurities in the sewage are adsorbed by the magnetic box, so as to separate and collect different types of impurities in the sewage, and also includes an anti-winding device, a wave flushing device, an anti-pollution device and an anti-bacterial device, the anti-winding device is arranged on the left side of the device body, the wave flushing device is arranged inside the device body, the anti-pollution device is arranged above the wave flushing device, and the anti-bacterial device is arranged above the anti-pollution device, the anti-winding device includes a water inlet pipe, a filter screen and an anti-winding component, the right side of the water inlet pipe passes through and is fixedly installed on the left side of the device body, the outer wall of the filter screen is fixedly installed on the right side of the inner wall of the water inlet pipe, the filter screen in the water inlet pipe will block larger impurities in the sewage to prevent impurities from clogging the filter screen, and the anti-winding component is arranged on the left side of the filter screen.

[0007] According to the above technical solution, the anti-winding component includes a rotating column and a blade. The right side of the rotating column is rotatably installed at the center of the left side of the filter screen, and an arc groove is provided on the outer wall surface of the rotating column. The right side of the blade is fixedly installed on the right side of the outer wall of the rotating column, and the blades are symmetrically distributed with the rotating column as the center. The impact force of the water flow causes the blade to generate a rotating force and start to rotate. When the blade rotates, it drives the rotating column to rotate synchronously. The blade can cut the linear impurities in the sewage to prevent the linear dirt from being entangled on the surface of the filter screen.

[0008] According to the above technical solution, the anti-winding component also includes a cross column, a scraper ring and an impact block. The back of the cross column is slidably installed inside the arc groove of the rotating column, the outer wall of the scraper ring is slidably installed on the inner wall of the water inlet pipe, and the inner wall of the scraper ring is fixedly installed on the front of the cross column. The rotation of the rotating column relies on the restriction of the arc groove on the cross column, so that the cross column can move back and forth left and right. At this time, the cross column drives the scraper ring to move synchronously along the inner wall of the water inlet pipe. The scraper ring will scrape off the dirt adhered to the inner wall of the water inlet pipe. The left side of the impact block is fixedly installed on the right edge of the scraper ring, and the filter is located on the movement trajectory of the impact block. When the scraper moves to the right, it drives the impact block to move synchronously, and uses the arc surface of the impact block to make the water flow centered in the direction close to the filter, thereby increasing the impact force of the water. The impact of water is used to wash away impurities adhered to the filter holes, preventing long-term impurities from staying for a long time and increasing the subsequent maintenance costs.

[0009] According to the above technical solution, the wave impulse device includes an electric cylinder, a stirring plate and a wave impulse component. The bottom of the electric cylinder is rotatably installed on the bottom of the inner wall of the device body, and the back of the stirring plate is fixedly installed on the outer wall of the electric cylinder. A circular hole is provided on the surface of the stirring plate. When the electric cylinder is started, the stirring plate is driven to rotate synchronously when the electric cylinder rotates. The stirring plate stirs the sewage, and the contact area between the stirring plate and the sewage is increased through the circular holes on the surface of the stirring plate, thereby improving the stirring effect of the stirring plate, effectively preventing the accumulation of colloidal dirt contained in the sewage, and stirring, separating and diluting the colloidal dirt, so as to facilitate the discharge of the colloidal dirt after the sewage treatment is completed. The wave impulse component is arranged on the outside of the stirring plate.

[0010] According to the above technical solution, the wave impulse assembly includes a semi-circular ball, an arc-shaped plate and a convex ball rod. The bottom of the semi-circular ball is fixedly installed on the top edge of the electric cylinder, and the bottom of the arc-shaped plate is slidably installed on the bottom slide groove of the inner wall of the device body. The arc plate is symmetrically distributed with the electric cylinder as the center, and the front of the convex ball rod is fixedly installed on the back of the arc-shaped plate, and one end of the back of the convex ball rod is located on the movement trajectory of the semi-circular ball. The electric cylinder drives the semi-circular ball to rotate synchronously, and the semi-circular ball continuously resists the convex ball rod to move away from the center of the electric cylinder. The convex ball rod will push the arc plate to slide synchronously along the bottom of the inner wall of the device body. After the resistance force disappears, the arc plate is reset by the thrust of the spring recovery, so that the arc plate will block the sewage, thereby generating a fluctuating force for the sewage. At this time, the fluctuating force and the stirring force of the stirring plate are combined, and the powerful impact force further promotes the decomposition and dilution of colloidal dirt in the sewage.

[0011] According to the above technical solution, the anti-pollution device includes a spring piece, an L-shaped knocking plate and an anti-pollution component. The spring piece is fixedly installed between the left side of the arc plate and the left side of the inner wall of the device body, and the spring piece is symmetrically distributed with the electric cylinder as the center. The top of the L-shaped knocking plate is fixedly installed at the center of the bottom of the spring piece, and the left side of the L-shaped knocking plate is in contact with the left side of the inner wall of the device body. When the arc plate moves, it will squeeze the spring piece to deform away from the center of the electric cylinder. When the squeezing force disappears, the spring piece relies on its own elasticity to recover. The spring piece drives the L-shaped knocking plate to reciprocate and knock the inner wall of the device body to generate a vibration force. The vibration force promotes the active vibration of the sewage inside the device body, further promoting the sewage treatment efficiency. The anti-pollution component is arranged above the spring piece.

[0012] According to the above technical solution, the anti-pollution component includes a vertical column and an activated carbon filter plate. The bottom of the vertical column is fixedly installed at the center of the top of the spring piece, and the vertical columns are symmetrically distributed with the electric cylinder as the center. The bottom of the activated carbon filter plate is fixedly installed on the top of the vertical column. When the spring piece is deformed and restored, it drives the vertical column to move back and forth up and down, and the vertical column drives the activated carbon filter plate to move synchronously. The activated carbon filter plate will filter and purify the harmful gas generated when the stirring plate stirs the sewage, preventing the pungent harmful gas pollution from directly contacting the air without treatment and causing air pollution.

[0013] According to the above technical solution, the antibacterial device includes a ladder block, a squeezing ball, an arc-shaped capsule and an antibacterial component. The bottom of the ladder block is fixedly installed at the top edge of the activated carbon filter plate, the squeezing ball is arranged on the back of the activated carbon filter plate, and the bottom of the arc-shaped capsule is fixedly installed on the top of the device body. The activated carbon filter plate drives the ladder block to move synchronously. The inclined surface of the ladder block will continuously resist the squeezing ball, so that the squeezing ball will continuously squeeze the inner wall of the arc-shaped capsule. The arc-shaped capsule will deform away from the center of the device body. The arc-shaped capsule relies on its own elasticity to restore. The arc-shaped capsule will absorb the small water droplets floating up when the stirring plate stirs the sewage, and rely on the desiccant inside the arc-shaped capsule to dry the small water droplets to prevent the small water column carrying bacteria from falling back to the surface of the activated carbon filter plate. The antibacterial component is arranged on the inside of the arc-shaped capsule.

[0014] According to the above technical solution, the right side of the squeezing ball is fixedly connected to the left side of the arc-shaped capsule, and the squeezing ball contacts the inclined surface of the ladder block. The inner wall of the arc-shaped capsule is provided with an arc-shaped opening, and the arc-shaped capsule is symmetrically distributed with the activated carbon filter plate as the center. A desiccant is provided inside the arc-shaped capsule.

[0015] According to the above technical solution, the antibacterial component includes a hinged rod and a heating arc block. One end of the hinged rod is hinged to the right side of the arc-shaped capsule, and the left side of the heating arc block is hinged to the other end of the hinged rod. The bottom of the heating arc block contacts the top surface of the activated carbon filter plate. When the arc-shaped capsule is deformed and restored, it pushes the hinged rod to move toward the center of the device body. The hinged rod drives the heating arc block to slide synchronously along the surface of the activated carbon filter plate. The reciprocating sliding of the heating arc block expands the heating range of the activated carbon filter plate. At the same time, the high temperature of the heating arc block is used to further sterilize the activated carbon filter plate.

[0016] Compared with the prior art, the present invention has the following beneficial effects: (1) The present invention sets an anti-winding device, and cooperates with the magnetic suction box and the conveying pipe so that the magnetic suction box can absorb the iron impurities in the sewage, thereby separating and collecting different types of impurities in the sewage, which is convenient for subsequent cleaning work; cooperates with the water inlet pipe and the filter screen so that the filter screen can block larger impurities in the sewage, preventing impurities from clogging the filter screen, thereby hindering the normal sewage treatment process; cooperates with the rotating column, blade, horizontal column, scraper ring and impact block so that the impact force of the water flow causes the blade to generate a rotating force to start rotating, and the blade can cut the linear impurities in the sewage, preventing the linear dirt from being entangled on the surface of the filter screen, further preventing the filter screen from being blocked; it also enables the horizontal column to move back and forth left and right, and the scraper ring can scrape the dirt adhered to the inner wall of the water inlet pipe, preventing dirt accumulation, reducing the water flow of the water inlet pipe, and avoiding the reduction of sewage treatment efficiency; the arc surface of the impact block is used to make the water flow toward the center of the filter screen, thereby strengthening the impact force of the water, and using the impact of the water to wash away the impurities adhered to the filter screen holes, thereby preventing long-term impurities from staying for a long time and increasing the subsequent maintenance costs.

[0017] (2) The present invention sets a wave device, and cooperates with the electric cylinder and the stirring plate, so that when the electric cylinder rotates, the stirring plate is driven to rotate synchronously. The circular holes on the surface of the stirring plate increase the contact area between the stirring plate and the sewage, improve the stirring effect of the stirring plate, effectively prevent the accumulation of colloidal dirt in the sewage, stir and separate the colloidal dirt, and facilitate the discharge of the colloidal dirt after the sewage treatment is completed; through the cooperation of the semi-circular ball, the arc plate and the convex ball rod, when the electric cylinder rotates, the semi-circular ball is driven to rotate synchronously, and the semi-circular ball continuously resists the convex ball rod to move away from the center of the electric cylinder. The convex ball rod will push the arc plate to slide synchronously along the bottom of the inner wall of the device body, and at the same time, the arc plate is reset by the thrust of the spring recovery, so that when the arc plate moves back and forth, the sewage stirred by the stirring plate will be blocked, thereby generating a fluctuating force on the sewage. At this time, the fluctuating force and the stirring force of the stirring plate are combined, and the strong impact force further promotes the decomposition and dilution of the colloidal dirt in the sewage, further improves the decomposition ability of the colloidal dirt, and makes it more convenient to discharge the colloidal dirt.

[0018] (3) The present invention sets up an anti-pollution device, and cooperates with an arc plate, a spring sheet and an L-shaped knocking plate, so that the arc plate squeezes the spring sheet to deform in the direction away from the center of the electric cylinder. When the squeezing force disappears, the spring sheet relies on its own elasticity to recover, and the spring sheet drives the L-shaped knocking column to knock back and forth on the inner wall of the device body to generate a vibration force. The vibration force promotes the active vibration of the sewage inside the device body, thereby further promoting the sewage treatment efficiency. At the same time, the vibration force generated by the knocking of the L-shaped knocking plate causes the solid particles adhering to the inner wall of the device body to fall off, preventing the solid particles from adhering to the device body for a long time and causing corrosion, thereby avoiding shortening the service life of the device body; through the cooperation of the spring sheet, the vertical column and the activated carbon filter plate, the vertical column can move back and forth up and down, and the vertical column drives the activated carbon filter plate to move synchronously. The activated carbon filter plate will filter and purify the harmful gases generated by the stirring plate when stirring the sewage, preventing the pungent harmful gas pollution from directly contacting the air without treatment and causing air pollution, and also avoiding the staff from inhaling the harmful gas into the body and endangering their health.

[0019] (4) The present invention sets up an antibacterial device, and cooperates with the activated carbon filter plate, ladder block, extrusion ball and arc bag, so that during the process of the arc bag's deformation recovery, the small water droplets of sewage floating up when the stirring plate stirs the sewage will be absorbed, and the small water droplets are dried by the desiccant inside the arc bag, so as to prevent the small water column carrying bacteria from falling back onto the surface of the activated carbon filter plate, and avoid bacterial infection when the staff touches the activated carbon filter plate, thereby creating a good working environment for the staff; through the cooperation of the arc bag, the hinged rod and the heating arc block, the hinged rod drives the heating arc block to slide synchronously along the surface of the activated carbon filter plate, and the reciprocating sliding of the heating arc block expands the heating range of the activated carbon filter plate, and the high temperature of the heating arc block is used to further sterilize the activated carbon filter plate; the heating arc block can evaporate the moisture adhering to the surface of the activated carbon filter plate in time, while ensuring the purification effect of the activated carbon filter plate on harmful gases, it also extends the service life of the activated carbon filter plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings: Figure 1 A schematic diagram of the present invention as a whole; Figure 2 A schematic cross-sectional view of the present invention as a whole; Figure 3 Schematic diagram of the anti-winding device of the present invention; Figure 4 This is a schematic diagram of the anti-winding device of the present invention from the right side perspective; Figure 5 This is a schematic diagram of the wave impulse device of the present invention; Figure 6 Schematic diagram of the anti-pollution device of the present invention; Figure 7 Schematic diagram of the antibacterial device of the present invention.

[0021] In the figure: 1. Device body; 2. Magnetic suction box; 3. Delivery pipe; 4. Anti-winding device; 41. Water inlet pipe; 42. Filter screen; 400. Anti-winding assembly; 401. Rotating column; 402. Blade; 403. Horizontal column; 404. Scraper ring; 405. Impact block; 5. Wave impulse device; 51. Electric cylinder; 52. Stirring plate; 500. Wave impulse assembly; 501. Semi-circular ball; 502. Arc plate; 503. Convex ball rod; 6. Anti-pollution device; 61. Shrapnel; 62. L-shaped knocking plate; 600. Anti-pollution assembly; 601. Vertical column; 602. Activated carbon filter plate; 7. Anti-bacterial device; 71. Ladder block; 72. Squeeze ball; 73. Arc capsule; 700. Anti-bacterial assembly; 701. Articulated rod; 702. Heating arc block. DETAILED DESCRIPTION

[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention. Example 1

[0023] See also Figure 1-5 The present invention provides a technical solution: a sewage treatment combination device, including a device body 1, a slide groove is provided at the bottom of the inner wall of the device body 1, and a spring is provided inside the slide groove, a magnetic box 2 is provided on the left side of the device body 1, and a conveying pipe 3 is provided on the left side of the magnetic box 2, and the conveying pipe 3 conveys sewage to the magnetic box 2, and the iron impurities in the sewage are adsorbed by the magnetic box 2, so that different types of impurities in the sewage are separated and collected, and also includes an anti-winding device 4 and a wave washing device 5. The anti-winding device 4 is arranged on the left side of the device body 1, and the wave washing device 5 is arranged inside the device body 1. The anti-winding device 4 includes an inlet pipe 41, a filter screen 42 and an anti-winding component 400, and the right side of the water inlet pipe 41 passes through and is fixedly installed on the left side of the device body 1, and the outer wall of the filter screen 42 is fixedly installed on the right side of the inner wall of the water inlet pipe 41. The filter screen 42 in the water inlet pipe 41 will block larger impurities in the sewage to prevent impurities from clogging the filter screen 42, and the anti-winding component 400 is arranged on the left side of the filter screen 42.

[0024] The anti-winding component 400 includes a rotating column 401 and a blade 402. The right side of the rotating column 401 is rotatably installed at the center of the left side of the filter screen 42, and an arc groove is provided on the outer wall surface of the rotating column 401. The right side of the blade 402 is fixedly installed on the right side of the outer wall of the rotating column 401, and the blades 402 are symmetrically distributed with the rotating column 401 as the center. The impact force of the water flow causes the blade 402 to generate a rotating force and start to rotate. When the blade 402 rotates, it drives the rotating column 401 to rotate synchronously. The blade 402 can cut the linear impurities in the sewage to prevent linear dirt from being entangled on the surface of the filter screen 42.

[0025] The anti-winding component 400 also includes a cross column 403, a scraper ring 404 and an impact block 405. The back of the cross column 403 is slidably installed in the arc groove of the rotating column 401, the outer wall of the scraper ring 404 is slidably installed on the inner wall of the water inlet pipe 41, and the inner wall of the scraper ring 404 is fixedly installed on the front of the cross column 403. The rotation of the rotating column 401 relies on the restriction of the arc groove on the cross column 403, so that the cross column 403 can move back and forth left and right. At this time, the cross column 403 drives the scraper ring 404 to move synchronously along the inner wall of the water inlet pipe 41, and the scraper ring 404 will scrape off the dirt adhered to the inner wall of the water inlet pipe 41. The left side of the impact block 405 is fixedly installed on the right edge of the scraper ring 404, and the filter screen 42 is located on the movement trajectory of the impact block 405. When the scraper ring 404 moves to the right, it drives the impact block 405 to move synchronously. The impact block 405 will continuously collide with the edge of the filter screen 42 to generate vibration, and shake off the impurities adhered to the holes of the filter screen 42.

[0026] The wave impulse device 5 includes an electric cylinder 51, a stirring plate 52 and a wave impulse component 500. The bottom of the electric cylinder 51 is rotatably installed on the bottom of the inner wall of the device body 1, and the back of the stirring plate 52 is fixedly installed on the outer wall of the electric cylinder 51. A circular hole is provided on the surface of the stirring plate 52. When the electric cylinder 51 is started, the electric cylinder 51 drives the stirring plate 52 to rotate synchronously when the electric cylinder 51 rotates. The stirring plate 52 stirs the sewage. The circular holes on the surface of the stirring plate 52 increase the contact area between the stirring plate 52 and the sewage, thereby improving the stirring effect of the stirring plate 52, effectively preventing the accumulation of colloidal dirt contained in the sewage, and stirring, separating and diluting the colloidal dirt, so as to facilitate the discharge of the colloidal dirt after the sewage treatment is completed. The wave impulse component 500 is arranged on the outside of the stirring plate 52.

[0027] The wave impulse assembly 500 includes a semicircular ball 501, an arc plate 502 and a convex ball rod 503. The bottom of the semicircular ball 501 is fixedly installed on the top edge of the electric cylinder 51. The bottom of the arc plate 502 is slidably installed on the bottom groove of the inner wall of the device body 1. The arc plate 502 is symmetrically distributed with the electric cylinder 51 as the center. The front of the convex ball rod 503 is fixedly installed on the back of the arc plate 502, and one end of the back of the convex ball rod 503 is located on the motion trajectory of the semicircular ball 501. The electric cylinder 51 drives the semicircular ball 501 synchronously. As the semicircular ball 501 rotates, it continuously resists the convex ball rod 503 and moves away from the center of the electric cylinder 51. The convex ball rod 503 will push the arc plate 502 to slide synchronously along the bottom of the inner wall of the device body 1. After the resistance force disappears, the arc plate 502 is reset by the thrust of the spring recovery, so that the arc plate 502 will block the sewage, thereby generating a fluctuating force on the sewage. At this time, the fluctuating force is combined with the stirring force of the stirring plate 52, and the powerful impact force further promotes the decomposition and dilution of colloidal dirt in the sewage.

[0028] During use, the sewage is transported from the delivery pipe 3 to the magnetic suction box 2, and the iron impurities in the sewage are adsorbed by the magnetic suction box 2, thereby separating and collecting different types of impurities in the sewage, which is convenient for subsequent cleaning work; when the sewage enters the water inlet pipe 41, the filter screen 42 in the water inlet pipe 41 will block the larger impurities in the sewage, preventing the impurities from clogging the filter screen 42, thereby hindering the normal sewage treatment process; the impact force of the water flow causes the blade 402 to generate a rotating force and start to rotate, and when the blade 402 rotates, it drives the rotating column 401 to rotate synchronously, and the blade 402 can cut the linear impurities in the sewage, preventing the linear dirt from being entangled on the surface of the filter screen 42, further preventing the filter screen 42 from being blocked; the rotating column 4 01 The rotation relies on the restriction of the arc groove on the horizontal column 403, so that the horizontal column 403 can move back and forth left and right. At this time, the horizontal column 403 drives the scraper ring 404 to move synchronously along the inner wall of the water inlet pipe 41. The scraper ring 404 will scrape off the dirt adhering to the inner wall of the water inlet pipe 41 to prevent dirt accumulation, reduce the water flow of the water inlet pipe 41, and avoid the reduction of sewage treatment efficiency; when the scraper ring 404 moves to the right, it drives the impact block 405 to move synchronously. The impact block 405 will continuously contact the edge of the filter screen 42, and use the arc surface of the impact block 405 to make the water flow towards the center of the filter screen, thereby increasing the impact force of the water, and using the impact of water to wash away impurities adhering to the holes of the filter screen 42, preventing long-term impurities from staying for a long time and increasing the subsequent maintenance costs.

[0029] Start the electric cylinder 51. When the electric cylinder 51 rotates, it drives the stirring plate 52 to rotate synchronously. When the stirring plate 52 rotates, it stirs the sewage entering the inside of the device body 1. The circular holes on the surface of the stirring plate 52 increase the contact area between the stirring plate 52 and the sewage, thereby further improving the stirring effect of the stirring plate 52, effectively preventing the sewage from containing colloidal dirt from accumulating. The stirring of the stirring plate 52 stirs, separates and dilutes the colloidal dirt, making it convenient for the colloidal dirt to be discharged after the sewage treatment is completed; when the electric cylinder 51 rotates, it drives the semi-circular ball 501 to rotate synchronously. When the semi-circular ball 501 rotates, it will continuously resist the convex ball rod 503 to move away from the electric cylinder 5 1, when the convex ball rod 503 moves away from the center of the electric cylinder 51, it will push the curved plate 502 to slide synchronously along the bottom of the inner wall of the device body 1. When the resistance of the convex ball rod 503 disappears, the curved plate 502 is reset by the thrust of the spring recovery. When the curved plate 502 moves back and forth, it will block the sewage stirred by the stirring plate 52, thereby generating a fluctuating force on the sewage. At this time, the fluctuating force is combined with the stirring force of the stirring plate 52. The powerful impact force further promotes the decomposition and dilution of the colloidal dirt in the sewage, further improves the decomposition ability of the colloidal dirt, and makes it easier to discharge the colloidal dirt. Example 2

[0030] See also Figure 1-7Based on Example 1, this embodiment further includes an anti-pollution device 6 and an anti-bacteria device 7. The anti-pollution device 6 is arranged above the wave-washing device 5, and the anti-bacteria device 7 is arranged above the anti-pollution device 6. The anti-pollution device 6 includes a spring piece 61, an L-shaped knocking plate 62 and an anti-pollution component 600. The spring piece 61 is fixedly installed between the left side of the arc plate 502 and the left side of the inner wall of the device body 1, and the spring piece 61 is symmetrically distributed with the electric cylinder 51 as the center. The top of the L-shaped knocking plate 62 is fixedly installed at the center of the bottom of the spring piece 61, and the left side of the L-shaped knocking plate 62 contacts the left side of the inner wall of the device body 1. When the arc plate 502 moves, it will squeeze the spring piece 61 to deform away from the center of the electric cylinder 51. When the squeezing force disappears, the spring piece 61 relies on its own elasticity to recover. The spring piece 61 drives the L-shaped knocking plate 62 to reciprocate and knock on the inner wall of the device body 1 to generate vibration force. The vibration force promotes the active vibration of the sewage inside the device body 1, further promoting the sewage treatment efficiency. The anti-pollution component 600 is arranged above the spring piece 61.

[0031] The anti-pollution component 600 includes a vertical column 601 and an activated carbon filter plate 602. The bottom of the vertical column 601 is fixedly installed at the center of the top of the spring piece 61, and the vertical column 601 is symmetrically distributed with the electric cylinder 51 as the center. The bottom of the activated carbon filter plate 602 is fixedly installed on the top of the vertical column 601. When the spring piece 61 is deformed and restored, it drives the vertical column 601 to move back and forth up and down, and the vertical column 601 drives the activated carbon filter plate 602 to move synchronously. The activated carbon filter plate 602 will filter and purify the harmful gas generated when the stirring plate 52 stirs the sewage, preventing the pungent harmful gas pollution from directly contacting the air without treatment and causing air pollution.

[0032] The antibacterial device 7 includes a ladder block 71, a squeezing ball 72, an arc-shaped capsule 73 and an antibacterial component 700. The bottom of the ladder block 71 is fixedly mounted on the top edge of the activated carbon filter plate 602, the squeezing ball 72 is arranged on the back of the activated carbon filter plate 602, and the bottom of the arc-shaped capsule 73 is fixedly mounted on the top of the device body 1. The activated carbon filter plate 602 drives the ladder block 71 to move synchronously. The inclined surface of the ladder block 71 will continuously resist the squeezing ball 72, so that the squeezing ball 72 will continuously squeeze the inner wall of the arc-shaped capsule 73, and the arc-shaped capsule 73 will deform away from the center of the device body 1. The arc-shaped capsule 73 relies on its own elasticity to restore. The arc-shaped capsule 73 will absorb the small water droplets floating when the stirring plate 52 stirs the sewage, and rely on the desiccant inside the arc-shaped capsule 73 to dry the small water droplets to prevent the small water columns carrying bacteria from falling back onto the surface of the activated carbon filter plate 602. The antibacterial component 700 is arranged on the inner side of the arc-shaped capsule 73.

[0033] The right side of the squeezing ball 72 is fixedly connected to the left side of the arc-shaped capsule 73, and the squeezing ball 72 contacts the inclined surface of the ladder block 71. The inner wall of the arc-shaped capsule 73 is provided with an arc-shaped opening, and the arc-shaped capsule 73 is symmetrically distributed with the activated carbon filter plate 602 as the center, and a desiccant is provided inside the arc-shaped capsule 73.

[0034] The antibacterial component 700 includes a hinged rod 701 and a heating arc block 702. One end of the hinged rod 701 is hinged to the right side of the arc capsule 73, and the left side of the heating arc block 702 is hinged to the other end of the hinged rod 701. The bottom of the heating arc block 702 is in contact with the top surface of the activated carbon filter plate 602. When the arc capsule 73 is deformed and restored, it pushes the hinged rod 701 to move toward the center of the device body 1. The hinged rod 701 drives the heating arc block 702 to slide synchronously along the surface of the activated carbon filter plate 602. The reciprocating sliding of the heating arc block 702 expands the heating range of the activated carbon filter plate 602. At the same time, the high temperature of the heating arc block 702 is used to further sterilize the activated carbon filter plate 602.

[0035] When in use, the arc plate 502 will squeeze the spring piece 61 and deform it away from the center of the electric cylinder 51 when it moves. When the squeezing force disappears, the spring piece 61 relies on its own elasticity to recover. During the deformation recovery process of the spring piece 61, it drives the L-shaped knocking plate 62 to knock back and forth on the inner wall of the device body 1 to generate a vibration force. The vibration force promotes the active vibration of the sewage inside the device body 1, thereby further promoting the sewage treatment efficiency. At the same time, the vibration force generated by the knocking of the L-shaped knocking plate 62 causes the solid particles adhering to the inner wall of the device body 1 to fall off, preventing the solid particles from adhering to the device body 1 for a long time and causing corrosion, thereby avoiding shortening the service life of the device body 1; when the spring piece 61 is deformed and recovered, it drives the vertical column 601 to move back and forth up and down, and when the vertical column 601 moves up and down, it drives the activated carbon filter plate 602 to move synchronously. When the activated carbon filter plate 602 moves up and down, it will filter and purify the harmful gases generated by the stirring plate 52 stirring the sewage, preventing the pungent harmful gas pollution from directly contacting the air without treatment and causing air pollution, and also avoiding the staff from inhaling harmful gases into the body and endangering their health.

[0036] When the activated carbon filter plate 602 moves up and down, it drives the ladder block 71 to move synchronously. When the ladder block 71 moves up and down, the inclined surface of the ladder block 71 will continuously resist the squeezing ball 72. The squeezing ball 72 will continuously squeeze the inner wall of the arc-shaped capsule 73 through the resistance force. At this time, the arc-shaped capsule 73 will deform away from the center of the device body 1. When the resistance of the ladder block 71 disappears, the arc-shaped capsule 73 relies on its own elasticity to recover. The suction force generated during the deformation recovery process of the arc-shaped capsule 73 will absorb the small water droplets floating up when the stirring plate 52 stirs the sewage into its own interior, and rely on the desiccant inside the arc-shaped capsule 73 to neutralize the small water droplets, thereby preventing the small water droplets carrying bacteria from falling back onto the surface of the activated carbon filter plate 602, thereby preventing staff from touching the activated carbon filter plate. 602, thereby creating a good working environment for the staff; when the arc-shaped capsule 73 is deformed and restored, it pushes the hinged rod 701 to move toward the center of the device body 1, and the hinged rod 701 drives the heating arc block 702 to slide synchronously along the surface of the activated carbon filter plate 602. The reciprocating sliding of the heating arc block 702 expands the heating range of the activated carbon filter plate 602, and at the same time relies on the high temperature of the heating arc block 702 to further sterilize the activated carbon filter plate 602; at the same time, the heating arc block 702 can evaporate the moisture adhering to the surface of the activated carbon filter plate 602 in time, while ensuring the purification effect of the activated carbon filter plate 602 on harmful gases, it also extends the service life of the activated carbon filter plate 602.

[0037] It should be noted that, in this document, relational terms such as first and second, etc., are used only 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 terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0038] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. A sewage treatment combined device, comprising a device body (1), a chute provided at the bottom of the inner wall of the device body (1), and a spring provided inside the chute, a magnetic suction box (2) provided on the left side of the device body (1), and a conveying pipe (3) provided on the left side of the magnetic suction box (2), characterized in that: The invention also includes an anti-winding device (4), a wave-rushing device (5), an anti-pollution device (6) and an anti-bacteria device (7), wherein the anti-winding device (4) is arranged on the left side of the device body (1), the wave-rushing device (5) is arranged inside the device body (1), the anti-pollution device (6) is arranged above the wave-rushing device (5), and the anti-bacteria device (7) is arranged above the anti-pollution device (6). The anti-winding device (4) includes a water inlet pipe (41), a filter screen (42) and an anti-winding component (400), wherein the right side of the water inlet pipe (41) passes through and is fixedly installed on the left side of the device body (1), the outer wall of the filter screen (42) is fixedly installed on the right side of the inner wall of the water inlet pipe (41), and the anti-winding component (400) is arranged on the left side of the filter screen (42).

2. A sewage treatment assembly according to claim 1, characterized in that: The anti-winding component (400) comprises a rotating column (401) and a blade (402), wherein the right side of the rotating column (401) is rotatably mounted at the center of the left side of the filter screen (42), and an arc groove is provided on the outer wall surface of the rotating column (401), and the right side of the blade (402) is fixedly mounted on the right side of the outer wall of the rotating column (401), and the blades (402) are symmetrically distributed with the rotating column (401) as the center.

3. A sewage treatment assembly according to claim 2, characterized in that: The anti-winding assembly (400) further comprises a transverse column (403), a scraper ring (404) and an impact block (405), wherein the back of the transverse column (403) is slidably mounted inside the arc-shaped groove of the rotating column (401), the outer wall of the scraper ring (404) is slidably mounted on the inner wall of the water inlet pipe (41), and the inner wall of the scraper ring (404) is fixedly mounted on the front of the transverse column (403), the left side of the impact block (405) is fixedly mounted on the right edge of the scraper ring (404), and the filter screen (42) is located on the movement trajectory of the impact block (405).

4. A sewage treatment assembly according to claim 3, characterized in that: The wave impulse device (5) comprises an electric cylinder (51), a stirring plate (52) and a wave impulse assembly (500), wherein the bottom of the electric cylinder (51) is rotatably mounted on the bottom of the inner wall of the device body (1), the back of the stirring plate (52) is fixedly mounted on the outer wall of the electric cylinder (51), and a circular hole is provided on the surface of the stirring plate (52), and the wave impulse assembly (500) is arranged on the outside of the stirring plate (52).

5. A sewage treatment assembly according to claim 4, characterized in that: The wave impulse assembly (500) comprises a semicircular ball (501), an arc-shaped plate (502) and a convex ball rod (503), wherein the bottom of the semicircular ball (501) is fixedly mounted on the top edge of the electric cylinder (51), the bottom of the arc-shaped plate (502) is slidably mounted on the bottom sliding groove of the inner wall of the device body (1), the arc-shaped plates (502) are symmetrically distributed with the electric cylinder (51) as the center, the front of the convex ball rod (503) is fixedly mounted on the back of the arc-shaped plate (502), and one end of the back of the convex ball rod (503) is located on the motion trajectory of the semicircular ball (501).

6. A sewage treatment assembly according to claim 5, characterized in that: The antibacterial device (7) comprises a ladder block (71), a squeezing ball (72), an arc-shaped capsule (73) and an antibacterial component (700), wherein the bottom of the ladder block (71) is fixedly mounted on the top edge of the activated carbon filter plate (602), the squeezing ball (72) is arranged on the back of the activated carbon filter plate (602), the bottom of the arc-shaped capsule (73) is fixedly mounted on the top of the device body (1), and the antibacterial component (700) is arranged on the inner side of the arc-shaped capsule (73).

7. A sewage treatment assembly according to claim 6, characterized in that: The right side of the squeezing ball (72) is fixedly connected to the left side of the arc-shaped capsule (73), and the squeezing ball (72) contacts the inclined surface of the ladder block (71). The inner wall of the arc-shaped capsule (73) is provided with an arc-shaped opening, and the arc-shaped capsule (73) is symmetrically distributed with the activated carbon filter plate (602) as the center. A desiccant is provided inside the arc-shaped capsule (73).

8. A sewage treatment assembly according to claim 7, characterized in that: The antibacterial component (700) includes a hinged rod (701) and a heating arc block (702), one end of the hinged rod (701) is hinged to the right side of the arc bag (73), the left side of the heating arc block (702) is hinged to the right side of the other end of the hinged rod (701), and the bottom of the heating arc block (702) is in contact with the top surface of the activated carbon filter plate (602).

Citation Information

Patent Citations

  • Sewage treatment combination fixture

    CN208327697U

  • Anaerobic tank sealing deodorization cover for rural domestic and breeding sewage treatment and treatment method of anaerobic tank sealing deodorization cover

    CN108079763A

  • Edible salt production equipment

    CN109123583A

  • Mixing device for preparing medicine granules

    CN116747763A

  • Novel sewage treatment equipment

    CN118458985A