Micro-flocculation reaction device
By introducing separable bucket lid and reaction bucket design into the microflocculation reaction device, the problem of impurity accumulation inside the device is solved, convenient impurity cleaning is achieved, and the practicality of the device is improved.
Patent Information
- Application Number
- CN202422228801.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-11
AI Technical Summary
The existing microflocculation reaction devices are usually integrated structures and do not support disassembly, which leads to the easy accumulation of large particles of impurities inside the reaction device, which increases the labor intensity of staff to clean large particles of impurities.
A microflocculation reaction device is designed, including a base plate, a reaction barrel, a barrel lid, agitator and cleaning components. Through a motor-driven screw and a moving block mechanism, the barrel lid and the reaction barrel can be separated, making it easy to remove the filter barrel and facilitate cleaning of large particles of impurities.
It reduces the accumulation of large particles and impurities inside the reaction device, reduces the time for staff to clean large particles and improves the practicality of the device.
Smart Images

Figure CN223118225U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of sewage reaction equipment, and more particularly to a micro-flocculation reaction device. Background Art
[0002] In sewage treatment, by adding a flocculant to the sewage to be treated, after the flocculant is added to the water, it hydrolyzes into a charged colloid and forms a micelle with a double-layer structure with the surrounding ions. The impurity particles in the water lose stability under the action of the flocculant and then coagulate with each other into larger particles, and then precipitate in the separation facility, so as to achieve the purpose of solid-liquid separation.
[0003] At present, the existing micro-flocculation reaction devices are usually of an integral structure and do not support disassembly. This results in the accumulation of a large number of large particle impurities inside the reaction device, and it takes a long time for the staff to clean the large particle impurities, greatly increasing the labor intensity of the staff and making the practicality of the micro-flocculation reaction device not high. Summary of the Utility Model
[0004] In order to make up for the above deficiencies, the utility model provides a micro-flocculation reaction device, aiming to improve the problem that the existing micro-flocculation reaction devices usually do not support disassembly, resulting in the accumulation of a large number of large particle impurities inside the reaction device and taking a long time for the staff to clean the large particle impurities.
[0005] The utility model is implemented as follows:
[0006] The utility model provides a micro-flocculation reaction device, which includes a bottom plate and a cleaning component.
[0007] On the upper surface of the bottom plate, there is a reaction barrel. A drain pipe is connected to the surface of the reaction barrel, and a barrel cover is slidably arranged on the top of the reaction barrel. The upper surface of the barrel cover is communicated with a liquid inlet pipe and a feeding pipe, and a stirring member is connected to the surface of the barrel cover. The cleaning component includes a first motor and a lead screw. A support plate is connected to the upper surface of the bottom plate. The first motor is installed in the support plate, and the output shaft of the first motor is connected to the lead screw. A moving block is threadedly sleeved on the surface of the lead screw. The moving block is slidably arranged in the support plate and is fixedly connected to the barrel cover. A filter barrel is arranged inside the reaction barrel, and lifting blocks are connected to both sides of the filter barrel.
[0008] In one embodiment of the utility model, a placement groove is opened on the upper surface of the bottom plate, and the bottom of the reaction barrel fits with the inner wall of the placement groove.
[0009] In one embodiment of the utility model, two handles are connected to the surface of the reaction barrel, the two handles are symmetrically arranged, and a control valve is arranged on the surface of the drain pipe.
[0010] In an embodiment of the present utility model, a sealing ring is connected inside the reaction barrel. The sealing ring is respectively in contact with the inner wall of the reaction barrel and the surface of the filtering barrel, and the sealing ring is in contact with the top of the reaction barrel.
[0011] In an embodiment of the present utility model, a first notch and a second notch corresponding to the lifting block are respectively formed at the tops of the reaction barrel and the sealing ring. The filtering barrel is located directly below the stirring member.
[0012] In an embodiment of the present utility model, the stirring member includes a second motor and a stirring rod. The second motor is installed on the upper surface of the barrel cover, and the output shaft of the second motor is connected to the stirring rod. The stirring rod is located directly above the barrel cover.
[0013] In an embodiment of the present utility model, a groove is formed on the back surface of the support plate, and the first motor is installed in the groove.
[0014] In an embodiment of the present utility model, a chute is formed on the front surface of the support plate. The upper end of the lead screw is rotatably installed in the chute, and the moving block is in contact with the inner wall of the chute.
[0015] The beneficial effects of the present utility model are as follows: A micro-flocculation reaction device obtained by the above design of the present utility model, during use, through the cooperation of the liquid inlet pipe and the feeding pipe, sewage and micro-flocculant can be added into the reaction barrel for reaction. After the sewage treatment, it can be discharged from the liquid discharge pipe. Through the cooperation of the first motor and the lead screw inside the support plate, the moving block can drive the barrel cover to move upward away from the reaction barrel, and the stirring member is no longer located inside the filtering barrel. Then, the reaction barrel is lifted upward by a certain height so that the reaction barrel is no longer located directly below the stirring member. Then, through the cooperation of the lifting block and the filtering barrel, the filtering barrel can be taken out of the reaction barrel, which is beneficial for cleaning the large particle impurities inside the filtering barrel. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for the embodiments. It should be understood that the following drawings only show some embodiments of the present utility model, and therefore should not be regarded as limiting the scope. For those of ordinary skill in the art, without creative efforts, other relevant drawings can also be obtained based on these drawings.
[0017] Figure 1 is a schematic structural diagram of the micro-flocculation reaction device provided by the embodiment of the present utility model;
[0018] Figure 2 is a partial cross-sectional view of the side structure of the connection between the bottom plate and the support plate provided by the embodiment of the present utility model;
[0019] Figure 3 Partial front structural sectional view of the connection between the reaction barrel and the filtration barrel provided by the embodiment of the present utility model;
[0020] Figure 4 Partial structural sectional view of the connection between the barrel cover and the stirring member provided by the embodiment of the present utility model.
[0021] In the figure: 100 - bottom plate; 110 - reaction barrel; 111 - handle; 112 - sealing ring; 120 - drain pipe; 130 - barrel cover; 140 - liquid inlet pipe; 150 - feeding pipe; 160 - stirring member; 161 - second motor; 162 - stirring rod; 170 - support plate; 171 - groove; 172 - sliding groove; 180 - placement groove; 200 - cleaning assembly; 210 - first motor; 220 - lead screw; 230 - moving block; 240 - filtration barrel; 250 - lifting block. Specific embodiments
[0022] To make the objectives, technical solutions, and advantages of the embodiments of the present utility model clearer, the technical solutions in the embodiments of the present utility model will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present utility model. Apparently, the described embodiments are some, but not all, of the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0023] Embodiment
[0024] Please refer to Figures 1-4 , the present utility model provides a micro - flocculation reaction device, including a bottom plate 100 and a cleaning assembly 200.
[0025] Among them, the cleaning assembly 200 is installed on the bottom plate 100. Through the cleaning assembly 200, the barrel cover 130 can be moved upward away from the reaction barrel 110, and then the reaction barrel 110 can be moved to other positions, and the filtration barrel 240 can be taken out from the reaction barrel 110, reducing the possibility that a large amount of large - particle impurities are likely to accumulate inside the reaction device and that it takes a long time for the staff to clean the large - particle impurities.
[0026] Please refer to Figures 1-4, a reaction barrel 110 is provided on the upper surface of the bottom plate 100. A liquid discharge pipe 120 is connected to the surface of the reaction barrel 110. And a barrel cover 130 is slidably provided on the top of the reaction barrel 110. A liquid inlet pipe 140 and a feeding pipe 150 are communicated with the upper surface of the barrel cover 130. And a stirring member 160 is connected to the surface of the barrel cover 130. In specific implementation, the filtering barrel 240 is placed into the reaction barrel 110, and then the barrel cover 130 is covered on the upper surface of the reaction barrel 110. By connecting the liquid inlet pipe 140 with an external sewage conveying device, and the external sewage conveying device is connected with the liquid inlet pipe 140 through a telescopic hose, it can reduce the possibility that the up and down movement of the barrel cover 130 will affect the sewage being conveyed into the reaction barrel 110. Then, a micro - flocculant is added from the feeding pipe 150, so that the sewage can react with the micro - flocculant. By starting the stirring member 160, the stirring member 160 rotates in the reaction barrel 110, which is beneficial to improving the reaction efficiency of the sewage and the micro - flocculant. Through the liquid discharge pipe 120, the treated water can be discharged from the reaction barrel 110.
[0027] In this embodiment, a placement groove 180 is formed on the upper surface of the bottom plate 100, and the bottom of the reaction barrel 110 is attached to the inner wall of the placement groove 180. In specific implementation, here the reaction barrel 110 is placed in the placement groove 180 of the bottom plate 100 to reduce the possibility that the reaction barrel 110 will move on the bottom plate 100; two handles 111 are connected to the surface of the reaction barrel 110, and the two handles 111 are symmetrically arranged. A control valve is provided on the surface of the liquid discharge pipe 120. In specific implementation, here by installing two handles 111 on the surface of the reaction barrel 110, it is beneficial for the staff to take out the reaction barrel 110 from the placement groove 180 through the handles 111. By opening the control valve, the treated sewage can be discharged from the liquid discharge pipe 120.
[0028] A sealing ring 112 is connected inside the reaction barrel 110. The sealing ring 112 is respectively attached to the inner wall of the reaction barrel 110 and the surface of the filtering barrel 240, and the sealing ring 112 is attached to the top of the reaction barrel 110. In specific implementation, here a sealing ring 112 is connected to the reaction barrel 110, so that the sealing ring 112 is attached to the surface of the filtering barrel 240, and the sealing ring 112 is attached to the top of the reaction barrel 110, reducing the possibility that sewage overflows from the gap between the reaction barrel 110 and the barrel cover 130. It should be noted that the sealing ring 112 can be made of rubber or silica gel.
[0029] Please refer to Figures 1-4, the cleaning component 200 includes a first motor 210 and a lead screw 220. A support plate 170 is connected to the upper surface of the bottom plate 100. The first motor 210 is installed in the support plate 170, and the output shaft of the first motor 210 is connected to the lead screw 220. A moving block 230 is threadedly sleeved on the surface of the lead screw 220. The moving block 230 is slidably arranged in the support plate 170, and the moving block 230 is fixedly connected to the bucket cover 130. A filter bucket 240 is arranged in the reaction barrel 110. Two sides of the filter bucket 240 are connected with lifting blocks 250. In specific implementation, when the sewage treatment is completed, the sewage is discharged from the drain pipe 120. By starting the first motor 210, its output shaft drives the lead screw 220 to rotate, and then drives the moving block 230 to move upward along the inside of the support plate 170, reducing the possibility that the moving track of the moving block 230 will deviate during the movement, so that the bucket cover 130 can move upward and no longer cover the reaction barrel 110, and the stirring member 160 can be taken out from the filter bucket 240. First, the reaction barrel 110 is taken out from the placement groove 180, so that the reaction barrel 110 is no longer directly below the stirring member 160. Then, by pulling the lifting block 250 upward, the filter bucket 240 can be driven to move upward and taken out from the reaction barrel 110, which is beneficial to cleaning the large-particle impurities in the filter bucket 240 and reducing the possibility that a large amount of large-particle impurities are likely to accumulate inside the reaction device and it takes a long time for the staff to clean the large-particle impurities.
[0030] In this embodiment, a first notch and a second notch corresponding to the lifting block 250 are respectively formed at the tops of the reaction barrel 110 and the sealing ring 112. The filter bucket 240 is located directly below the stirring member 160. In specific implementation, here, the first notch and the second notch are formed at the tops of the reaction barrel 110 and the sealing ring 112, so that the lifting block 250 is located in the first notch and the second notch, which is beneficial to the compactness between the components of the device; the stirring member 160 includes a second motor 161 and a stirring rod 162. The second motor 161 is installed on the upper surface of the bucket cover 130, and the output shaft of the second motor 161 is connected to the stirring rod 162. The stirring rod 162 is located directly above the bucket cover 130.
[0031] A groove 171 is formed on the back surface of the support plate 170. The first motor 210 is installed in the groove 171. In specific implementation, here, the first motor 210 is arranged in the groove 171 of the support plate 170, reducing the possibility that sewage will splash on the surface of the first motor 210; a chute 172 is formed on the front surface of the support plate 170. The upper end of the lead screw 220 is rotatably installed in the chute 172, and the moving block 230 is in contact with the inner wall of the chute 172. In specific implementation, when the lead screw 220 rotates, the moving block 230 can move up and down along the inner wall of the chute 172, which is beneficial to improving the stability of the moving block 230 during the movement. Installing the lead screw 220 rotatably in the chute 172 is beneficial to protecting the lead screw 220.
[0032] Specifically, the working principle of the micro-flocculation reaction device is as follows: When in use, connect the liquid inlet pipe 140 to an external sewage transportation device to allow sewage to enter the reaction barrel 110. Then pour the micro-flocculant into the reaction barrel 110 from the feeding pipe 150. By starting the second motor 161, its output shaft drives the stirring rod 162 to rotate, which helps to improve the reaction efficiency of the sewage and the micro-flocculant. After the sewage reaction, open the control valve to discharge the sewage from the drain pipe 120. Large particle impurities will accumulate in the filter barrel 240. By starting the first motor 210 in the support plate 170, its output shaft drives the screw rod 220 to rotate, which can make the moving block 230 move upward along the inner wall of the sliding groove 172, facilitating the stability of the moving block 230 during the movement, and then driving the bucket cover 130 to move upward away from the reaction barrel 110. The stirring rod 162 is no longer located inside the filter barrel 240. Then lift the reaction barrel 110 upward by a certain height. By horizontally moving the reaction barrel 110, the reaction barrel 110 is no longer located directly below the stirring rod 162. By pulling the lifting block 250 upward, the filter barrel 240 can be taken out of the reaction barrel 110, which is conducive to cleaning the large particle impurities in the filter barrel 240 and reducing the possibility that a large amount of large particle impurities are likely to accumulate inside the reaction device and that it takes a long time for the staff to clean the large particle impurities.
[0033] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A micro-flocculation reaction device, characterized in that, including a bottom plate (100), on the upper surface of the bottom plate (100) there is a reaction barrel (110), on the surface of the reaction barrel (110) there is a liquid discharge pipe (120) connected, and on the top of the reaction barrel (110) there is a barrel cover (130) slidably arranged, on the upper surface of the barrel cover (130) there are a liquid inlet pipe (140) and a feeding pipe (150) communicated, and on the surface of the barrel cover (130) there is a stirring member (160) connected; a cleaning assembly (200), the cleaning assembly (200) includes a first motor (210) and a lead screw (220), on the upper surface of the bottom plate (100) there is a support plate (170) connected, the first motor (210) is installed in the support plate (170), and the output shaft of the first motor (210) is connected to the lead screw (220), on the surface of the lead screw (220) there is a moving block (230) threadedly sleeved, the moving block (230) is slidably arranged in the support plate (170), and the moving block (230) is fixedly connected to the barrel cover (130), inside the reaction barrel (110) there is a filter barrel (240), on both sides of the filter barrel (240) there are lifting blocks (250) connected.
2. The micro-flocculation reaction device according to claim 1, characterized in that, On the upper surface of the bottom plate (100) there is a placement groove (180) opened, and the bottom of the reaction barrel (110) is in fit with the inner wall of the placement groove (180).
3. The micro-flocculation reaction device according to claim 1, characterized in that, On the surface of the reaction barrel (110) there are two handles (111) connected, the two handles (111) are symmetrically arranged, and on the surface of the liquid discharge pipe (120) there is a control valve.
4. A micro-flocculation reaction device according to claim 1, characterized in that, Inside the reaction barrel (110) there is a sealing ring (112) connected, the sealing ring (112) is respectively in fit with the inner wall of the reaction barrel (110) and the surface of the filter barrel (240), and the sealing ring (112) is in fit with the top of the reaction barrel (110).
5. A micro-flocculation reaction device according to claim 4, characterized in that, On the tops of the reaction barrel (110) and the sealing ring (112) there are respectively a first notch and a second notch corresponding to the lifting block (250), and the filter barrel (240) is located directly below the stirring member (160).
6. The micro-flocculation reaction device according to claim 1, characterized in that, The stirring member (160) includes a second motor (161) and a stirring rod (162), the second motor (161) is installed on the upper surface of the barrel cover (130), and the output shaft of the second motor (161) is connected to the stirring rod (162), and the stirring rod (162) is located directly above the barrel cover (130).
7. A microflocculation reaction device according to claim 1, characterized in that, On the back of the support plate (170) there is a groove (171) opened, and the first motor (210) is installed in the groove (171).
8. A micro-flocculation reaction device according to claim 1, characterized in that, On the front of the support plate (170) there is a chute (172) opened, the upper end of the lead screw (220) is rotatably installed in the chute (172), and the moving block (230) is in fit with the inner wall of the chute (172).