Wastewater treatment device
By designing the filter structure of the arc-shaped splitter plate and storage box in the drug wastewater treatment device, the problem of frequent cleaning of the filter structure in the prior art is solved, efficient filtration and storage of wastewater is achieved, and the convenience of use is improved.
Patent Information
- Application Number
- CN202421679290.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-16
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2034-07-16
AI Technical Summary
The filter structure of existing drug wastewater treatment devices usually adopts flat filtration, which leads to frequent cleaning of the filter screen after use, which is troublesome.
A wastewater treatment device including a purification cylinder, a top cover, and a filter structure is designed. The filter structure consists of an arc-shaped splitter plate, a filter tank and a storage box. The wastewater is guided into the storage box through the arc-shaped splitter plate. The storage box and the splitter plate have filtering capabilities at the same time, reducing the cleaning frequency.
Through the design of arc-shaped splitter plate and storage box, effective filtration and storage of wastewater is achieved, reducing the frequency of cleaning of the device and improving the convenience of use.
Smart Images

Figure CN222834017U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of medicine manufacturing, and specifically relates to a wastewater treatment device. Background Art
[0002] Biopharmaceuticals refer to a class of products used for prevention, treatment and diagnosis that are manufactured from organisms, biological tissues, cells, organs, body fluids, etc. using the research results of microbiology, biology, medicine, biochemistry, biotechnology, pharmacy and other scientific principles and methods.
[0003] The currently commonly used pharmaceutical wastewater treatment devices usually filter and then purify the wastewater in the device to treat the wastewater. The structure of filtering wastewater in the currently commonly used wastewater treatment devices is usually planar filtration. Although the planar structure can filter wastewater, the filter needs to be cleaned within a short period of time after use. Because the flat filter will filter the wastewater, the blocked impurities will accumulate on the top of the filter, which requires it to be cleaned after each use, so the filter needs to be cleaned frequently during use, which is more troublesome.
[0004] In view of this, the present utility model is proposed. Utility Model Content
[0005] In order to solve the technical problems of the above-mentioned prior art which are troublesome when used, the basic concept of the technical solution adopted by the utility model is:
[0006] A wastewater treatment device, comprising:
[0007] The purification cylinder is in the shape of a hollow cylinder with an open top. A valve is fixedly connected to the bottom of the purification cylinder, and the valve can be connected to the purification cylinder cavity;
[0008] The top cover is in the shape of a disk, and a rectangular groove is formed through the top of the top cover. The top cover can cover the top opening of the purification cylinder. The top cover is installed on the top of the purification cylinder through the screw holes formed on the top and with the bolts. The top of the top cover is fixedly connected with an L-shaped bracket, and the top of the bracket is fixedly connected with a rotating motor. The bottom of the bracket is rotatably connected with a gear, and the rotating motor can drive the gear to rotate on the top of the top cover;
[0009] The filtering structure can filter the wastewater entering the purification cylinder cavity. The filtering structure includes: a diverter plate, a filter trough and a storage box. The diverter plate is arranged in the cavity of the purification cylinder. The diverter plate is an arc-shaped plate. The filter trough runs through the arc surface of the diverter plate. The storage box is symmetrically and movably connected on both sides of the diverter plate. The diverter plate can guide the wastewater toward the wall of the storage box.
[0010] As a preferred embodiment of the utility model, the storage box is a hollow rectangular box with an open top, and a filter groove is also opened through the bottom of the cavity of the storage box. The filter groove is a circular groove, and multiple filter grooves are evenly opened on the wall of the diverter plate and the storage box.
[0011] As a preferred embodiment of the utility model, the filtering structure also includes a guide plate, a drain groove, a give-way groove and a filter box. The guide plate is fixedly connected to the middle section of the cavity of the purification cylinder. The drain groove is symmetrically opened at the top of the guide plate. The give-way groove runs through the top center of the guide plate. The filter box is fixedly connected to the wall of the guide plate in the drain groove. The filter box is a hollow rectangular tube, and the diverter plate is fixedly connected in the filter box cavity.
[0012] As a preferred embodiment of the utility model, the top of the guide plate is symmetrically provided with grooves with isosceles triangular cross-sections, symmetrical leakage grooves are opened at the bottom of the triangular grooves, a filter box is arranged at the bottom of each leakage groove, and the storage box is clamped between the two sides of the diverter plate and the two sides of the filter box cavity.
[0013] As a preferred embodiment of the utility model, the filtering structure also includes a connecting plate and a connecting block. The connecting plate is fixedly connected to the top wall of each storage box, and the connecting block is fixedly connected to the top of each symmetrical connecting plate. The top of the top cover is symmetrically penetrated with T-slots that match the size of the connecting blocks. Each connecting block is snapped into the corresponding T-slot. The top of the symmetrical T-slot can fit each symmetrical storage box through it, and the top of the symmetrical connecting block is fixedly connected with a U-shaped handle with an opening facing downward.
[0014] As a preferred embodiment of the utility model, an enhancement structure is arranged in the give way groove, and the enhancement structure includes a rotating tube, a driven wheel, a bottom edge, a piston, a stirring rod and a movable groove. The rotating tube is rotatably connected in the give way groove, the driven wheel is rotatably connected at the center of the top circle of the top cover, the top of the rotating tube can pass through the top cover and is fixedly connected to the bottom of the driven wheel, the bottom edge is symmetrically fixedly connected at the bottom of the rotating tube, the piston is symmetrically fixedly connected between the symmetrical bottom edges, the stirring rod is rotatably connected to the wall of the symmetrical piston, the movable groove runs through both sides of one end of the stirring rod, and the stirring rod is connected to the piston through the movable groove.
[0015] As a preferred embodiment of the utility model, the piston is cylindrical, the movable groove can adapt to the size of the piston, the rotating tube is in the shape of a circular tube, the driven wheel is in the shape of a disc, the arc surface of the driven wheel is provided with teeth that mesh with the gear, and a circular opening that is connected to the rotating tube cavity is opened through the center of the top circle of the driven wheel.
[0016] Compared with the prior art, the utility model has the following beneficial effects:
[0017] 1. By setting up a filtering structure, there is no need to clean the device frequently. The filtering structure guides the wastewater into the storage box through an arc-shaped diverter plate, and the storage box and the diverter plate can simultaneously filter the wastewater. When the storage box cavity is fully loaded, the wastewater can be filtered through the wall of the diverter plate, and multiple storage boxes are arranged in the purification cylinder cavity, which can effectively filter the wastewater without cleaning the storage box in a short time. Therefore, this solution does not require frequent cleaning when in use.
[0018] 2. By setting up the synergistic structure, it is convenient to add the purifier to the filtered wastewater during use, and the rotating stirring rod can fully mix and purify the wastewater and the purifier, thereby effectively reducing the time for purifying the wastewater and adding the wastewater purifier.
[0019] The specific implementation modes of the present utility model are further described in detail below in conjunction with the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In the attached picture:
[0021] Figure 1 This is a three-dimensional diagram of the utility model
[0022] Figure 2 This is a cross-sectional view of the purification cylinder cavity of the utility model
[0023] Figure 3 This is a schematic diagram of the top structure of the guide plate of the utility model.
[0024] Figure 4 This is a three-dimensional diagram of the utility model's diverter plate and storage box
[0025] Figure 5 This is the exploded view of the bottom structure of the rotating tube of the utility model
[0026] In the figure: 20, purification cylinder; 21, top cover; 22, rotating motor; 23, driven wheel; 24, rotating tube; 25, bottom edge; 26, piston; 27, stirring rod; 28, movable groove; 30, guide plate; 31, drain groove; 32, give way groove; 33, filter box; 34, diverter plate; 35, filter tank; 36, storage box; 37, connecting plate; 38, connecting block. DETAILED DESCRIPTION
[0027] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme in the embodiments will be clearly and completely described below in conjunction with the drawings in the embodiments of the utility model. The following embodiments are used to illustrate the utility model.
[0028] like Figure 1 and Figure 2As shown, a wastewater treatment device, a purification cylinder 20, the purification cylinder 20 is in the shape of a hollow cylinder with an open top, and a valve is fixedly connected to the bottom of the purification cylinder 20, and the valve can be connected to the cavity of the purification cylinder 20;
[0029] The top cover 21 is disc-shaped, and a rectangular groove is opened through the top of the top cover 21. The top cover 21 can cover the top opening of the purification cylinder 20. The top cover 21 is installed on the top of the purification cylinder 20 through the screw holes opened on the top and with the bolts. The top of the top cover 21 is fixedly connected with an L-shaped bracket, and the top of the bracket is fixedly connected with a rotating motor 22. The bottom of the bracket is rotatably connected with a gear. The rotating motor 22 can drive the gear to rotate on the top of the top cover 21. The rotating motor 22 is electrically connected to the corresponding power supply. This is an existing technology, so it will not be described here.
[0030] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the filtering structure can filter the wastewater entering the cavity of the purification tube 20. The filtering structure includes: a diverter plate 34, a filter slot 35 and a storage box 36. The diverter plate 34 is arranged in the cavity of the purification tube 20. The diverter plate 34 is an arc-shaped plate. The filter slot 35 passes through the arc surface of the diverter plate 34. The storage box 36 is symmetrically and movably connected on both sides of the diverter plate 34. The diverter plate 34 can guide the wastewater toward the wall of the storage box 36.
[0031] like Figure 1 , Figure 2 , Figure 3 and Figure 4As shown in the figure, the storage box 36 is a hollow rectangular box with an open top. A filter groove 35 is also provided through the bottom of the cavity of the storage box 36. The filter groove 35 is a circular groove, and a plurality of filter grooves 35 are evenly provided on the wall surfaces of the flow dividing plate 34 and the storage box 36. The filtering structure further includes a guiding plate 30, a leakage groove 31, a relief groove 32 and a filter box 33. The guiding plate 30 is fixedly connected to the middle section of the cavity of the purification cylinder 20. The leakage grooves 31 are symmetrically provided on the top of the guiding plate 30. The relief groove 32 is provided through the center of the top of the guiding plate 30. The filter box 33 is fixedly connected to the wall surface of the guiding plate 30 in the leakage groove 31. The filter box 33 is a hollow rectangular pipe. The flow dividing plate 34 is fixedly connected in the cavity of the filter box 33. The top of the guiding plate 30 is symmetrically provided with grooves with isosceles triangle cross-sections. The symmetric leakage grooves 31 are provided at the bottom of the triangular grooves. A filter box 33 is provided at the bottom of each leakage groove 31. The storage box 36 is clamped between the two sides of the flow dividing plate 34 and the two sides of the cavity of the filter box 33. The filtering structure further includes a connecting plate 37 and a connecting block 38. The connecting plate 37 is fixedly connected to the top wall surface of each storage box 36. The connecting block 38 is fixedly connected to the top of each symmetric connecting plate 37. Symmetric T-shaped grooves adapted to the size of the connecting block 38 are provided through the top of the top cover 21. Each connecting block 38 is clamped in the corresponding T-shaped groove. The top of the symmetric T-shaped grooves can be adapted to allow each symmetric storage box 36 to pass through. The tops of the symmetric connecting blocks 38 are fixedly connected with U-shaped handles with openings facing downwards;
[0032] During specific use, first turn on the power supply, and pour the wastewater to be purified into the rectangular groove at the top of the top cover 21. When the wastewater enters the cavity of the purification cylinder 20 through the top cover 21, it will first fall on the top of the guiding plate 30, and then flow into the corresponding leakage groove 31 along the triangular groove provided on the top of the guiding plate 30. When the wastewater flows into the leakage groove 31, it will enter the wall surface of the flow dividing plate 34 in the cavity of the filter box 33, and then move along the arc surface of the flow dividing plate 34 to the cavities of the storage boxes 36 on both sides of the flow dividing plate 34, and then filter the water through the filter grooves 35 provided on the wall surfaces of the storage box 36 and the flow dividing plate 34. At this time, the impurities in the water will accumulate in the cavity of the storage box 36. After the water is filtered, it will accumulate at the bottom of the cavity of the purification cylinder 20. If all the wastewater to be treated is filtered, the valve at the bottom of the purification cylinder 20 can be opened to drain the water. When it is necessary to clean the cavity of the storage box 36, the handles at the tops of the symmetric connecting blocks 38 can be lifted upwards to drive the symmetric connecting blocks 38 to separate from the T-shaped grooves at the top of the top cover 21. The symmetric connecting blocks 38 can drive the storage box 36 to disengage upwards from the wall surfaces on both sides of the flow dividing plate 34 through the connecting plate 37, so as to remove the storage box 36 from the cavity of the purification cylinder 20 for cleaning. When installing the storage box 36, the connecting block 38 can be directly installed on the top of the top cover 21 in the same way;
[0033] In summary, by setting up a filtering structure, there is no need to clean the device frequently. The filtering structure guides the wastewater into the storage box 36 through the arc-shaped diverter plate 34, and the storage box 36 and the diverter plate 34 can simultaneously have the ability to filter wastewater. When the storage box 36 cavity is fully loaded, the wastewater can be filtered through the wall surface of the diverter plate 34, and multiple storage boxes 36 are arranged in the purification cartridge 20 cavity, which can effectively filter the wastewater without cleaning the storage box 36 in a short time. Therefore, this solution does not require frequent cleaning when in use.
[0034] like Figure 1 , Figure 2 and Figure 5 As shown, a synergistic structure is arranged in the clearance groove 32, and the synergistic structure includes a rotating tube 24, a driven wheel 23, a bottom edge 25, a piston 26, a stirring rod 27 and a movable groove 28. The rotating tube 24 is rotatably connected in the clearance groove 32, and the driven wheel 23 is rotatably connected to the top center of the top cover 21. The top of the rotating tube 24 can pass through the top cover 21 and is fixedly connected to the bottom of the driven wheel 23. The bottom edge 25 is symmetrically fixedly connected to the bottom of the rotating tube 24, and the piston 26 is symmetrically fixedly connected between the symmetrical bottom edges 25. The stirring rod 27 is rotatably connected to the wall surface of the symmetrical piston 26, and the active groove 28 is opened on both sides of one end of the stirring rod 27. The stirring rod 27 is connected to the piston 26 through the active groove 28. The piston 26 is cylindrical, and the active groove 28 can adapt to the size of the piston 26. The rotating tube 24 is in a circular tube shape, and the driven wheel 23 is in a disc shape. The arc surface of the driven wheel 23 is provided with meshing teeth that mesh with the gear, and the top center of the driven wheel 23 is penetrated by a circular opening that is connected to the cavity of the rotating tube 24;
[0035] In specific use, when the power is turned on, the rotating motor 22 will drive the gear to rotate, and the gear will drive the driven wheel 23 to rotate on the top of the top cover 21 through the meshing teeth on the arc surface of the driven wheel 23. When the driven wheel 23 rotates, it will drive the rotating tube 24 to rotate in the cavity of the purification cylinder 20, and the rotating tube 24 can drive the symmetrical stirring rods 27 at the bottom of the rotating tube 24 to rotate simultaneously through the centrifugal force when rotating. When it is necessary to add a purifying agent for purifying water into the cavity of the purification cylinder 20, it can be poured into the cavity of the rotating tube 24 through the circular opening at the top of the driven wheel 23 and then filtered in the wastewater flowing from the cavity of the rotating tube 24 to the bottom of the cavity of the purification cylinder 20. The rotating stirring rod 27 can stir the wastewater at the bottom of the cavity of the purification cylinder 20;
[0036] In summary, by providing a synergistic structure, it is convenient to add purifiers to the filtered wastewater during use, and the rotating stirring rod 27 can fully mix and purify the wastewater and the purifier, thereby effectively reducing the time for purifying the wastewater and adding the wastewater purifier.
[0037] Working principle: First, turn on the power, and pour the wastewater to be purified from the rectangular groove on the top of the top cover 21. When the wastewater passes through the top cover 21 and enters the cavity of the purification cylinder 20, it will first fall on the top of the guide plate 30, and then flow into the corresponding drain groove 31 along the triangular groove opened on the top of the guide plate 30. When the wastewater flows into the drain groove 31, it will enter the wall surface of the diverter plate 34 in the cavity of the filter box 33, and then move along the arc surface of the diverter plate 34 to the cavity of the storage box 36 on both sides of the diverter plate 34, and then The water is then filtered down along the filter groove 35 opened on the wall of the storage box 36 and the diverter plate 34. At this time, impurities in the water will accumulate in the cavity of the storage box 36. After the water is filtered, it will accumulate at the bottom of the cavity of the purification cylinder 20. If all the waste water to be treated is filtered, the valve at the bottom of the purification cylinder 20 can be opened to discharge the water. When the power is turned on, the rotating motor 22 will drive the gear to rotate, and the gear will drive the driven wheel 23 to rotate on the top of the top cover 21 through the meshing teeth on the arc surface of the driven wheel 23. The driven wheel When the driven wheel 23 rotates, it drives the rotating tube 24 to rotate in the cavity of the purification cylinder 20, and the rotating tube 24 can drive the symmetrical stirring rod 27 at the bottom of the rotating tube 24 to rotate simultaneously through the centrifugal force. When it is necessary to add a purifying agent for purifying water into the cavity of the purification cylinder 20, it can be poured into the cavity of the rotating tube 24 through the circular opening at the top of the driven wheel 23 and then filtered in the wastewater flowing from the cavity of the rotating tube 24 to the bottom of the cavity of the purification cylinder 20. The rotating stirring rod 27 can stir the wastewater at the bottom of the cavity of the purification cylinder 20. When stirring is performed, and when it is necessary to clean the cavity of the storage box 36, the handle on the top of the symmetrical connecting block 38 can be lifted upward to drive the symmetrical connecting block 38 to separate from the T-shaped groove on the top of the top cover 21, and the symmetrical connecting block 38 can drive the storage box 36 to detach upward from the two side walls of the diverter plate 34 through the connecting plate 37, so that the storage box 36 can be removed from the cavity of the purification cylinder 20 for cleaning. When installing the storage box 36, the connecting block 38 can be directly installed to the top of the top cover 21 in the same way.
[0038] It is understood that the present invention is described by some embodiments, and those skilled in the art are aware that various changes or equivalent substitutions may be made to these features and embodiments without departing from the spirit and scope of the present invention. In addition, under the teachings of the present invention, these features and embodiments may be modified to adapt to specific circumstances and materials without departing from the spirit and scope of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are within the scope of protection of the present invention.
Claims
1. A wastewater treatment device, characterized in that: Including: A purification cylinder (20), the purification cylinder (20) is in the shape of a hollow cylinder with an open top, and a valve is fixedly connected to the bottom of the purification cylinder (20), and the valve can communicate with the cavity of the purification cylinder (20); A top cover (21), the top cover (21) is in the shape of a disc, a rectangular groove is penetrated and opened at the top of the top cover (21), the top cover (21) can block the top opening of the purification cylinder (20), the top cover (21) is installed on the top of the purification cylinder (20) through the screw holes opened at the top and in cooperation with bolts, an L-shaped bracket is fixedly connected to the top of the top cover (21), a rotating motor (22) is fixedly connected to the top of the bracket, and a gear is rotatably connected to the bottom of the bracket, and the rotating motor (22) can drive the gear to rotate on the top of the top cover (21); A filtering structure, the filtering structure can filter the wastewater entering the cavity of the purification cylinder (20), and the filtering structure includes: a flow dividing plate (34), a filtering groove (35) and a storage box (36), the flow dividing plate (34) is arranged in the cavity of the purification cylinder (20), the flow dividing plate (34) is in the shape of an arc-shaped plate, the filtering groove (35) is penetrated and opened on the arc surface of the flow dividing plate (34), the storage boxes (36) are symmetrically and movably connected on both sides of the flow dividing plate (34), and the flow dividing plate (34) can guide the wastewater towards the wall surface of the storage box (36).
2. A wastewater treatment device according to claim 1, characterized in that: The storage box (36) is in the shape of a hollow rectangular box with an open top, and a filtering groove (35) is also penetrated and opened at the bottom of the cavity of the storage box (36), the filtering groove (35) is in the shape of a circular groove, and a plurality of filtering grooves (35) are evenly opened on the wall surfaces of the flow dividing plate (34) and the storage box (36).
3. A wastewater treatment device according to claim 1, characterized in that: The filtering structure further includes a guiding plate (30), a leaking groove (31), a让位 groove (32) and a filtering box (33), the guiding plate (30) is fixedly connected to the middle section of the cavity of the purification cylinder (20), the leaking grooves (31) are symmetrically opened at the top of the guiding plate (30), the让位 groove (32) is penetrated and opened at the center of the top of the guiding plate (30), the filtering box (33) is fixedly connected to the wall surface of the guiding plate (30) in the leaking groove (31), the filtering box (33) is in the shape of a hollow rectangular pipe, and the flow dividing plate (34) is fixedly connected in the cavity of the filtering box (33).
4. A wastewater treatment device according to claim 3, characterized in that: The top of the guiding plate (30) is symmetrically provided with grooves with isosceles triangle cut surfaces, the symmetric leaking grooves (31) are opened at the bottom of the triangular grooves, a filtering box (33) is arranged at the bottom of each leaking groove (31), and the storage boxes (36) are clamped between the two sides of the flow dividing plate (34) and the inner sides of the cavities of the filtering boxes (33).
5. A wastewater treatment device according to claim 3, characterized in that: The filtering structure further includes a connecting plate (37) and a connecting block (38), the connecting plate (37) is fixedly connected to the top wall surface of each storage box (36), the connecting block (38) is fixedly connected to the top of each symmetric connecting plate (37), T-shaped grooves adapted to the size of the connecting block (38) are symmetrically penetrated and opened at the top of the top cover (21), each connecting block (38) is clamped in the corresponding T-shaped groove, the tops of the symmetric T-shaped grooves can be adapted to allow each symmetric storage box (36) to pass through, and匚-shaped handles with openings facing downwards are fixedly connected to the tops of the symmetric connecting blocks (38).
6. A wastewater treatment device according to claim 3, characterized in that: The said yielding groove (32) is provided with a synergistic structure, which comprises a rotating tube (24), a driven wheel (23), a bottom edge (25), a piston (26), a stirring rod (27) and a movable groove (28). The rotating tube (24) is rotatably connected in the yielding groove (32), the driven wheel (23) is rotatably connected to the top center of the top cover (21), the top of the rotating tube (24) can pass through the top cover (21) and is fixedly connected to the bottom of the driven wheel (23), the bottom edge (25) is symmetrically fixedly connected to the bottom of the rotating tube (24), the piston (26) is symmetrically fixedly connected between the symmetrical bottom edges (25), the stirring rod (27) is rotatably connected to the wall surface of the symmetrical piston (26), the movable groove (28) runs through both sides of one end of the stirring rod (27), and the stirring rod (27) is connected to the piston (26) through the movable groove (28).
7. A wastewater treatment device according to claim 6, characterized in that: The piston (26) is cylindrical, the movable groove (28) can adapt to the size of the piston (26), the rotating tube (24) is in the shape of a circular tube, the driven wheel (23) is in the shape of a disc, the arc surface of the driven wheel (23) is provided with meshing teeth that mesh with the gear, and the top center of the driven wheel (23) is penetrated by a circular opening that is connected to the cavity of the rotating tube (24).