An efficient integrated water purification device
Through the design of resistance components and sprinkler components, the bevel gear system is driven by a servo motor to achieve efficient mixing and precipitation of flocculant and suspended particles, solving the problems of uneven mixing and precipitation difficulties in existing equipment, and achieving efficient water purification treatment.
Patent Information
- Application Number
- CN202411880085.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2044-12-19
AI Technical Summary
In the sewage treatment, the existing integrated water purification equipment causes the water flow to form a vortex, making it difficult to stand and precipitate, and the mixing effect of flocculant and suspended particles is not good.
The resistance assembly and the spraying agent assembly are adopted to drive the bevel gear to drive the rotation rod and casing to rotate through the servo motor, which realizes spraying and reverse rotation of the flocculant, generates shear force and impact force, forms flocs, and discharges flocs through the automatic mud discharge device.
The mixing efficiency and precipitation effect of sewage treatment are improved, ensuring effective collision between flocculants and suspended particles, reducing the risk of floc collision, and realizing automatic replenishment and static precipitation.
Smart Images

Figure CN119612719B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water purification equipment, and particularly relates to a highly efficient integrated water purification equipment. Background Art
[0002] At the current stage, in the process of treating sewage with an integrated water purification equipment, it is necessary to continuously stir to promote the mixing of sewage and flocculants such as flocculants, and then precipitate it to achieve water purification treatment. Usually, the stirring method will cause the water flow to form a vortex state and rotate rapidly. Firstly, it is difficult to ensure that the water flow stands still quickly for precipitation. Secondly, the vortex state water flow formed is likely to make the entering flocculant rotate with the vortex water flow, which is not conducive to the shearing and impact of the flocculant and suspended particles in the water, resulting in a lower mixing treatment effect. Summary of the Invention
[0003] The main purpose of the present invention is to provide a highly efficient integrated water purification equipment, which can effectively solve the problems in the background art.
[0004] To achieve the above purpose, the technical solution adopted by the present invention is as follows:
[0005] A highly efficient integrated water purification equipment includes a reaction cylinder. A resistance component is arranged on the upper side and inside of the reaction cylinder. Several groups of medicine spraying components are arranged below the resistance component. A water inlet pipe is fixedly arranged at the upper end of one side of the reaction cylinder. A collection cylinder is fixedly installed at the lower end of the reaction cylinder. A docking pipe is fixedly connected between the reaction cylinder and the collection cylinder. A drain pipe is fixedly arranged near the lower part of the other side of the collection cylinder. Electric valves are fixedly installed on both the docking pipe and the drain pipe. A floc discharge pipe is fixedly arranged at the rear side of the reaction cylinder. An automatic sludge discharging device is fixedly arranged on the floc discharge pipe. The resistance component includes a base fixedly installed at the upper end of the reaction cylinder. A support seat is fixedly arranged at the upper end of the base. A partition is fixedly arranged near the upper position inside the support seat. A servo motor is fixedly arranged at one end of the support seat. A first bevel gear is fixedly arranged on one side of the rotating shaft of the servo motor. A rotating rod is rotatably arranged inside the reaction cylinder, the base and the partition. A stirring blade is fixedly arranged at the lower end of the rotating rod. A sleeve is rotatably arranged on the outer side of the rotating rod. Second bevel gears are fixedly arranged on the outer sides of the rotating rod and the sleeve near the upper and lower sides of the first bevel gear.
[0006] Preferably, a convex block is fixedly arranged at the upper end of one group of the two groups of second bevel gears connected to the rotating rod. A cylinder is fixedly arranged at the upper end of the support seat. A round block is fixedly arranged at the lower end of the telescopic rod of the cylinder. A connecting groove is arranged at the position corresponding to the round block on the upper side of the rotating rod. A buffer groove ring is fixedly arranged at the lower end of the partition plate. A medicine supplement pipe is fixedly arranged on one side of the sleeve. A pipe cap is threadedly connected to the upper side of the medicine supplement pipe. A pipe groove is arranged inside the sleeve. Two discs are fixedly arranged on the outer side of the sleeve near the inside of the reaction cylinder. Three movable rods are movably arranged between the two discs. A number of tooth grooves are arranged on the outer side of the movable rod. A hemispherical block is fixedly arranged at the lower end of the movable rod. A first spring is sleeved between the outer side of the movable rod near the hemispherical block and the lower disc. A chassis is fixedly arranged at the lower side of the rotating rod near the stirring blade. A medicine storage shell is fixedly arranged on the outer side of the sleeve near the upper inner wall of the reaction cylinder.
[0007] Preferably, the medicine spraying assembly includes a round pipe fixedly arranged on the outer side of the sleeve. A counterweight plug block is slidably arranged inside one side of the round pipe. A round hole is arranged inside the counterweight plug block. A second spring is fixedly arranged between the counterweight plug block and the inner wall of one side of the round pipe. A docking rod is fixedly arranged on the other side of the round pipe. Three round grooves are arranged in the upper part near one side inside the round pipe. Spraying shells are fixedly arranged at the positions corresponding to the three round grooves at the upper end of the round pipe. A number of spray heads are fixedly arranged on the outer side of the spraying shell. A sealing block is slidably arranged outside the round groove. A limiting rod is fixedly arranged inside the sealing block. A third spring is fixedly arranged between the sealing block and the upper inner wall of the spraying shell. Rings are rotatably arranged on the outer sides of both sides of the round pipe. Fan blades are fixedly arranged between the two rings. One end of one of the two rings close to the sleeve is fixedly provided with a gear ring.
[0008] Preferably, a number of the medicine spraying assemblies are respectively arranged on the sleeve. The rotating shaft of the servo motor passes through one side of the support seat. The first bevel gear is meshed with the two groups of second bevel gears respectively.
[0009] Preferably, the rotating rod penetrates through the inside of the sleeve. The rotating rod is movably arranged with the partition plate. The sleeve respectively passes through the inside of the base and the reaction cylinder.
[0010] Preferably, the round block is rotatably arranged inside the connecting groove. The buffer groove ring is movably arranged with the rotating rod. The medicine supplement pipe is communicated with the pipe groove and the inside of the medicine storage shell. The three movable rods are evenly distributed in a circular shape between the two discs. The hemispherical block is attached to the upper end of the chassis.
[0011] Preferably, the round pipe is communicated with the pipe groove inside. The counterweight plug block is attached to the inner wall of the round pipe. The docking rod is adapted to the round hole. The spray head is communicated with the inside of the spraying shell.
[0012] Preferably, the sealing block fits against the inner wall of the circular groove, the limiting rod passes through the upper side of the spraying shell, and the gear ring is meshed with the tooth groove on the movable rod.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] 1. Wastewater filtered from impurities is added into the reaction cylinder through the water inlet pipe, and a flocculant required for reaction is added into the chemical storage shell through the chemical supplement pipe. The servo motor is started to drive the first bevel gear to rotate, driving two engaged second bevel gears. The two second bevel gears respectively drive the rotating rod and the sleeve to rotate in two opposite directions. When the rotating rod rotates, it drives the stirring blades to rotate, and cooperates with the sleeve to drive a plurality of chemical spraying assemblies to spray the flocculant, so that the wastewater and the flocculant in the reaction cylinder carry out the reaction work. The reverse rotation of the sleeve causes the flocculant and suspended particles sprayed out of the reaction cylinder to be driven by the stirring blades, generating strong shear force and impact force, causing them to collide and mix with each other to form flocs. Subsequently, the formed flocs can be discharged outwards through the sludge discharge pipe and the automatic sludge discharge device.
[0015] 2. During the rotation of a plurality of circular tubes, under the action of centrifugal force, the counterweight plug moves towards the docking rod. At this time, the docking rod inserts into the inner part of the round hole, squeezing the second spring, and the docking rod blocks the round hole after inserting it. The counterweight plug moves along the docking rod under centrifugal force, squeezing the flocculant between the counterweight plug and the inner wall of one side of the circular tube, causing the flocculant entering the circular groove to push the sealing block upwards, squeezing the third spring, and the flocculant will be splashed out from a plurality of spraying heads to react with the wastewater. The fan blades are horizontally arranged and reduce the horizontal contact surface during rotation, trying to avoid contacting the smaller floating flocs on the upper side. After the work is completed, when the circular tube stops rotating, the sealing block and the counterweight plug are pushed back elastically, sealing the upper outlet and opening the round hole, and the flocculant in the chemical storage shell and the pipe groove enters for replenishment again, facilitating the next work use and achieving the purpose of automatic replenishment.
[0016] 3. Additionally, when static settling is required, the rotating rod is pulled upwards by the cylinder and the round block. At this time, the second bevel gear on the outer side of the rotating rod disengages from the first bevel gear, and the convex block contacts the buffer groove ring for buffering, causing the rotating rod and the stirring blades to slowly stop rotating, avoiding directly stopping and scattering the formed flocs on the lower side. While the rotating rod moves upwards, it drives the chassis to rise upwards, lifting the three hemispherical blocks and the movable rod, squeezing the first spring, and the three upwardly moving movable rods drive the engaged gear ring and the fan blades to rotate 90 degrees and stand up. Cooperating with the servo motor drive, the rotating water flow is reversely rotated at the position with less flocs on the upper side, and cooperating with the stirring blades to stop the rotating water flow, accelerating the rotating water flow to stop and achieving the purpose of static settling. Description of the Drawings
[0017] Figure 1 Schematic diagram of the overall structure of an efficient integrated water purification device of the present invention;
[0018] Figure 2 Schematic diagram of the internal structure of an efficient integrated water purification device of the present invention;
[0019] Figure 3 Schematic diagram of the resistance component and chemical agent spraying component structure of an efficient integrated water purification device of the present invention;
[0020] Figure 4 Partial structure schematic of the resistance component of an efficient integrated water purification device of the present invention Figure 1 ;
[0021] Figure 5 Partial structure schematic of the resistance component of an efficient integrated water purification device of the present invention Figure 2 ;
[0022] Figure 6 Schematic diagram of the partially sectioned structure of the resistance component of an efficient integrated water purification device of the present invention;
[0023] Figure 7 Schematic diagram of the internal structure of the chemical agent spraying component of an efficient integrated water purification device of the present invention;
[0024] Figure 8 For an efficient integrated water purification device of the present invention Figure 7 Enlarged structure schematic of part A;
[0025] Figure 9 Schematic diagram of the partially unfolded structure of the chemical agent spraying component of an efficient integrated water purification device of the present invention.
[0026] In the figure: 1, reaction cylinder; 2, resistance component; 21, base; 22, support seat; 23, partition board; 24, servo motor; 25, first bevel gear; 26, rotating rod; 27, stirring blade; 28, sleeve; 29, second bevel gear; 210, convex block; 211, cylinder; 212, round block; 213, connecting groove; 214, buffer groove ring; 215, chemical agent supplement pipe; 216, pipe cap; 217, pipe groove; 218, disc; 219, movable rod; 220, tooth groove; 221, hemispherical block; 222, first spring; 223, chassis; 224, chemical agent storage shell; 3, chemical agent spraying component; 31, round pipe; 32, weight plug block; 33, round hole; 34, second spring; 35, docking rod; 36, round groove; 37, spraying shell; 38, spraying head; 39, sealing block; 310, limiting rod; 311, third spring; 312, ring; 313, fan blade; 314, gear ring; 4, water inlet pipe; 5, collection cylinder; 6, docking pipe; 7, drain pipe; 8, electric valve; 9, sludge discharge pipe; 10, automatic sludge discharge device. Detailed implementation manners
[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments.
[0028] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. is the relative relationship of the orientation or position, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.
[0029] Please refer to Figures 1 - 9 , an embodiment provided by the present invention: an efficient integrated water purification device, including a reaction cylinder 1. A resistance component 2 is arranged on the upper side and inside of the reaction cylinder 1. Several groups of chemical agent spraying components 3 are arranged on the lower side of the resistance component 2. A water inlet pipe 4 is fixedly arranged at the upper end of one side of the reaction cylinder 1. A collection cylinder 5 is fixedly installed at the lower end of the reaction cylinder 1. A docking pipe 6 is fixedly connected to one side of the reaction cylinder 1 and the collection cylinder 5. A drain pipe 7 is fixedly arranged near the lower part of the other side of the collection cylinder 5. Electric valves 8 are fixedly installed on both the docking pipe 6 and the drain pipe 7. A floc discharge pipe 9 is fixedly arranged at the rear side of the reaction cylinder 1. An automatic sludge discharging device 10 is fixedly arranged on the floc discharge pipe 9. The resistance component 2 includes a base 21 fixedly installed at the upper end of the reaction cylinder 1. A support seat 22 is fixedly arranged at the upper end of the base 21. A partition plate 23 is fixedly arranged near the upper position inside the support seat 22. A servo motor 24 is fixedly arranged at one end of the support seat 22. A first bevel gear 25 is fixedly arranged on one side of the rotating shaft of the servo motor 24. A rotating rod 26 is rotatably arranged inside the reaction cylinder 1, the base 21, and the partition plate 23. A stirring blade 27 is fixedly arranged at the lower end of the rotating rod 26. A sleeve 28 is rotatably arranged on the outer side of the rotating rod 26. Second bevel gears 29 are fixedly arranged on the outer sides of the rotating rod 26 and the sleeve 28 near the upper and lower sides of the first bevel gear 25.
[0030] Several groups of chemical agent spraying components 3 are respectively arranged on the sleeve 28. The rotating shaft of the servo motor 24 passes through one side of the support seat 22. The first bevel gear 25 is meshed with the two second bevel gears 29 respectively. The rotating rod 26 penetrates through the inside of the sleeve 28. The rotating rod 26 is movably arranged with the partition plate 23. The sleeve 28 respectively penetrates through the inside of the base 21 and the reaction cylinder 1.
[0031] The wastewater after filtering impurities is added into the interior of the reaction cylinder 1 through the water inlet pipe 4, and the flocculant required for reaction is added into the medicine storage shell 224 through the medicine supplement pipe 215. The servo motor 24 is started to drive the first bevel gear 25 to rotate, driving two groups of meshing second bevel gears 29. The two groups of second bevel gears 29 respectively drive the rotating rod 26 and the sleeve 28 to rotate in two opposite directions. When the rotating rod 26 rotates, it will drive the stirring blade 27 to rotate, and cooperate with the sleeve 28 to drive a plurality of medicine spraying assemblies 3 to spray the flocculant, so that the wastewater and the flocculant inside the reaction cylinder 1 carry out the reaction work. The reverse rotation of the sleeve 28 causes the flocculant and suspended particles spilled from the reaction cylinder 1 to be driven by the stirring blades, generating strong shear force and impact force, causing them to collide and mix with each other to form flocs. Subsequently, the formed flocs can be discharged outwards through the floc discharge pipe 9 and the automatic sludge discharge device 10.
[0032] A convex block 210 is fixedly arranged at the upper end of a group of the two groups of second bevel gears 29 connected to the rotating rod 26. A cylinder 211 is fixedly arranged at the upper end of the support seat 22. A round block 212 is fixedly arranged at the lower end of the telescopic rod of the cylinder 211. A connection groove 213 is opened at the position corresponding to the round block 212 on the upper side of the rotating rod 26. A buffer groove ring 214 is fixedly arranged at the lower end of the partition plate 23. A medicine supplement pipe 215 is fixedly arranged on one side of the sleeve 28. A pipe cap 216 is threadedly connected to the upper side of the medicine supplement pipe 215. A pipe groove 217 is arranged inside the sleeve 28. Two groups of discs 218 are fixedly arranged on the outer side of the sleeve 28 near the interior of the reaction cylinder 1. Three groups of movable rods 219 are movably arranged between the two groups of discs 218. A plurality of tooth grooves 220 are arranged on the outer side of the movable rod 219. A hemispherical block 221 is fixedly arranged at the lower end of the movable rod 219. A first spring 222 is sleeved between the outer side of the movable rod 219 near the hemispherical block 221 and the lower group of discs 218. A chassis 223 is fixedly arranged at the lower side of the rotating rod 26 near the stirring blade 27. A medicine storage shell 224 is fixedly arranged on the outer side of the sleeve 28 near the upper inner wall of the reaction cylinder 1.
[0033] The round block 212 is rotatably arranged inside the connection groove 213. The buffer groove ring 214 is movably arranged with the rotating rod 26. The medicine supplement pipe 215 is communicated with the interior of the pipe groove 217 and the medicine storage shell 224. The three groups of movable rods 219 are circularly and evenly distributed between the two groups of discs 218. The hemispherical block 221 is attached to the upper end of the chassis 223.
[0034] When it is necessary to be stationary and precipitate, the rotating rod 26 is pulled upward by the cylinder 211 and the round block 212. At this time, the second bevel gear 29 outside the rotating rod 26 is disengaged from the first bevel gear 25, and the convex block 210 contacts the buffer groove ring 214 for buffering, so that the rotating rod 26 and the stirring blade 27 slowly stop rotating, avoiding the flocs formed on the lower side being scattered due to direct stop. While the rotating rod 26 moves upward, it drives the chassis 223 to rise, jacks up the three hemispherical blocks 221 and the movable rod 219, and compresses the first spring 222. The three movable rods 219 moving upward will drive the engaged gear ring 314 and the fan blade 313 to rotate 90 degrees and stand up. Driven by the servo motor 24, the rotating water flow is reversely rotated at the position where there is less flocculation on the upper side, and the rotating water flow is stopped in cooperation with the stirring blade 27, and the accelerating rotating water flow stops to complete the purpose of static and precipitation.
[0035] The chemical agent spraying assembly 3 includes a circular tube 31 fixedly arranged outside the sleeve 28. A counterweight plug 32 is slidably arranged inside one side of the circular tube 31. A round hole 33 is opened inside the counterweight plug 32. A second spring 34 is fixedly arranged between the counterweight plug 32 and the inner wall of one side of the circular tube 31. A docking rod 35 is fixedly arranged on the other side of the circular tube 31. Three circular grooves 36 are opened in the upper part near one side inside the circular tube 31. Spraying shells 37 are fixedly arranged at the positions corresponding to the three circular grooves 36 at the upper end of the circular tube 31. A number of spray heads 38 are fixedly arranged on the outside of the spraying shells 37. A sealing block 39 is slidably arranged outside the circular groove 36. A limiting rod 310 is fixedly arranged inside the sealing block 39. A third spring 311 is fixedly arranged between the sealing block 39 and the upper inner wall of the spraying shell 37. Circular rings 312 are rotatably arranged on the outer sides of both sides of the circular tube 31. A fan blade 313 is fixedly arranged between the two circular rings 312. One end of the group of the two circular rings 312 close to the sleeve 28 is fixedly provided with a gear ring 314.
[0036] The circular tube 31 is internally communicated with the tube groove 217. The counterweight plug 32 is arranged in fit with the inner wall of the circular tube 31. The docking rod 35 is adapted to the round hole 33. The spray head 38 is internally communicated with the spraying shell 37. The sealing block 39 is in fit with the inner wall of the circular groove 36. The limiting rod 310 passes through the upper side of the spraying shell 37. The gear ring 314 is arranged in meshing with the tooth groove 220 on the movable rod 219.
[0037] In the process of several groups of round tubes 31 being driven to rotate, the counterweight plug 32 moves toward the side of the docking rod 35 under the action of centrifugal force. At this time, the docking rod 35 is inserted into the inside of the round hole 33 to squeeze the second spring 34, and the docking rod 35 is inserted into the round hole 33 to block it, so that the counterweight plug 32 moves along the docking rod 35 under the centrifugal force, squeezing the flocculant between the counterweight plug 32 and the inner wall of one side of the round tube 31, so that the flocculant entering the circular groove 36 pushes the sealing block 39 upwards, squeezing the third spring 311 , the flocculant will be splashed out from several groups of spray heads 38 to react with the wastewater, and the fan blades 313 are arranged horizontally to reduce the lateral contact surface during the rotation process, and try to avoid contact with the smaller flocculants floating on the upper side. After the work is completed, when the circular tube 31 stops rotating, the sealing block 39 and the counterweight plug block 32 are pushed back to seal the upper outlet and the circular hole 33 is opened, and the flocculant in the drug storage shell 224 and the tube groove 217 is replenished again, which is convenient for the next work use, thereby achieving the purpose of automatic replenishment.
[0038] Working principle: During use, wastewater after filtering impurities is added into the reaction cylinder 1 through the water inlet pipe 4, and a flocculant required for reaction is added into the chemical agent storage shell 224 through the chemical agent supplement pipe 215. The servo motor 24 is started to drive the first bevel gear 25 to rotate, driving two sets of meshing second bevel gears 29. The two sets of second bevel gears 29 respectively drive the rotating rod 26 and the sleeve 28 to rotate in two opposite directions. When the rotating rod 26 rotates, it drives the stirring blade 27 to rotate, and cooperates with the sleeve 28 to drive a number of chemical agent spraying assemblies 3 to spray the flocculant, so that the wastewater and the flocculant inside the reaction cylinder 1 react. The reverse rotation of the sleeve 28 causes the flocculant and suspended particles spilled from the reaction cylinder 1 to be driven by the stirring blades, generating strong shear force and impact force, causing them to collide and mix with each other to form flocs. Subsequently, the formed flocs can be discharged outwards through the sludge discharge pipe 9 and the automatic sludge discharging device 10; during the process of driving a number of round tubes 31 to rotate, the counterweight plug 32 moves towards the docking rod 35 under the action of centrifugal force. At this time, the docking rod 35 is inserted into the inner part of the round hole 33, squeezing the second spring 34, and the docking rod 35 blocks the round hole 33 when inserted into it, so that the counterweight plug 32 moves along the docking rod 35 under centrifugal force, squeezing the flocculant between the counterweight plug 32 and the inner wall of one side of the round tube 31, causing the flocculant entering the round groove 36 to push the sealing block 39 upwards, squeezing the third spring 311, and the flocculant will be splashed out from a number of spraying heads 38 to react with the wastewater. The fan blades 313 are horizontally arranged and reduce the horizontal contact surface during rotation, trying to avoid contacting the smaller floating flocs on the upper side. After the work is completed, when the round tube 31 stops rotating, the sealing block 39 and the counterweight plug 32 are pushed back elastically, sealing the upper outlet and opening the round hole 33, and the flocculant in the chemical agent storage shell 224 and the pipe groove 217 enters for replenishment again, facilitating the next work use and achieving the purpose of automatic replenishment; in addition, when static settling is required, the rotating rod 26 is pulled upwards by the cylinder 211 and the round block 212. At this time, the second bevel gear 29 outside the rotating rod 26 is disengaged from the first bevel gear 25, and the convex block 210 contacts the buffer groove ring 214 for buffering, so that the rotating rod 26 and the stirring blade 27 slowly stop rotating, avoiding directly stopping and scattering the flocs formed on the lower side. At the same time as the rotating rod 26 moves upwards, it drives the chassis 223 to rise upwards, pushing up the three hemispherical blocks 221 and the movable rod 219, squeezing the first spring 222, and the three upwardly moving movable rods 219 drive the meshing gear ring 314 and the fan blades 313 to rotate 90 degrees and stand up, cooperating with the drive of the servo motor 24 to reversely rotate the rotating water flow at the position with less flocs on the upper side, and cooperating with the stirring blade 27 to stop the rotating water flow, and the accelerating rotating water flow stops to complete the purpose of static settling and precipitation.
[0039] The methods of using and controlling the automatic sludge discharging device 10, servo motor 24, cylinder 211, electronic devices and other structural components in the present invention belong to the common knowledge in this field, and their working principles are already well-known technologies. In addition, the models are selected according to actual use, so no further detailed explanation will be given.
[0040] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An efficient integrated water purification device, comprising a reaction cylinder (1), characterized in that: On the upper side and inside of the reaction cylinder (1), a resistance component (2) is provided. Below the resistance component (2), several groups of chemical spraying components (3) are provided. At the upper end of one side of the reaction cylinder (1), a water inlet pipe (4) is fixedly arranged. At the lower end of the reaction cylinder (1), a collection cylinder (5) is fixedly installed. A docking pipe (6) is fixedly connected between the reaction cylinder (1) and one side of the collection cylinder (5). At the lower part near the other side of the collection cylinder (5), a drain pipe (7) is fixedly arranged. Electric valves (8) are fixedly installed on both the docking pipe (6) and the drain pipe (7). At the rear side of the reaction cylinder (1), a floc discharge pipe (9) is fixedly arranged. An automatic sludge discharging device (10) is fixedly arranged on the floc discharge pipe (9). The resistance component (2) includes a base (21) fixedly installed at the upper end of the reaction cylinder (1). At the upper end of the base (21), a support seat (22) is fixedly arranged. Near the upper position inside the support seat (22), a partition plate (23) is fixedly arranged. At one end of the support seat (22), a servo motor (24) is fixedly arranged. On one side of the rotating shaft of the servo motor (24), a first bevel gear (25) is fixedly arranged. Inside the reaction cylinder (1), the base (21), and the partition plate (23), a rotating rod (26) is rotatably arranged. At the lower end of the rotating rod (26), a stirring blade (27) is fixedly arranged. A sleeve (28) is rotatably arranged on the outer side of the rotating rod (26). Second bevel gears (29) are fixedly arranged on the outer sides of the rotating rod (26) and the sleeve (28) near the upper and lower sides of the first bevel gear (25). On the upper end of one of the two groups of second bevel gears (29) connected to the rotating rod (26), a convex block (210) is fixedly arranged. At the upper end of the support seat (22), a cylinder (211) is fixedly arranged. At the lower end of the telescopic rod of the cylinder (211), a round block (212) is fixedly arranged. At the position corresponding to the round block (212) on the upper side of the rotating rod (26), a connection groove (213) is opened. At the lower end of the partition plate (23), a buffer groove ring (214) is fixedly arranged. On one side of the sleeve (28), a chemical replenishing pipe (215) is fixedly arranged. A pipe cap (216) is threadedly connected to the upper side of the chemical replenishing pipe (215). A pipe groove (217) is arranged inside the sleeve (28). Two groups of discs (218) are fixedly arranged on the outer side of the sleeve (28) near the inside of the reaction cylinder (1). Three movable rods (219) are movably arranged between the two groups of discs (218). A number of tooth grooves (220) are arranged on the outer sides of the movable rods (219). At the lower end of the movable rod (219), a hemispherical block (221) is fixedly arranged. A first spring (222) is sleeved between the outer side of the movable rod (219) near the hemispherical block (221) and the lower group of discs (218). At the position near the stirring blade (27) on the lower side of the rotating rod (26), a chassis (223) is fixedly arranged. On the outer side of the sleeve (28) near the upper inner wall of the reaction cylinder (1), a chemical storage shell (224) is fixedly arranged. The chemical spraying component (3) includes a circular tube (31) fixedly arranged outside the sleeve (28). A counterweight plug (32) is slidably arranged inside one side of the circular tube (31). A circular hole (33) is formed inside the counterweight plug (32). A second spring (34) is fixedly arranged between the inner side of the counterweight plug (32) and the inner wall of one side of the circular tube (31). A docking rod (35) is fixedly arranged on the other side of the circular tube (31).
2. The highly efficient integrated water purification device according to claim 1, characterized in that: Three circular grooves (36) are formed above one side inside the circular tube (31). Spraying shells (37) are fixedly arranged at the upper end of the circular tube (31) corresponding to the positions of the three circular grooves (36). A number of spray heads (38) are fixedly arranged on the outer side of the spraying shells (37). A sealing block (39) is slidably arranged outside the circular groove (36). A limiting rod (310) is fixedly arranged inside the sealing block (39). A third spring (311) is fixedly arranged between the inner side of the sealing block (39) and the upper inner wall of the spraying shell (37). Rings (312) are rotatably arranged on the outer sides of both sides of the circular tube (31). A fan blade (313) is fixedly arranged between the two rings (312). A gear ring (314) is fixedly arranged at one end of the group of the two rings (312) close to the sleeve (28).
3. An efficient integrated water purification device according to claim 1, characterized in that: A number of the chemical spraying components (3) are respectively arranged on the sleeve (28). The rotating shaft of the servo motor (24) passes through one side of the support base (22). The first bevel gear (25) is meshed with the two second bevel gears (29) respectively.
4. An efficient integrated water purification device according to claim 1, characterized in that: The rotating rod (26) penetrates through the inside of the sleeve (28). The rotating rod (26) is movably arranged with the partition plate (23). The sleeve (28) respectively penetrates through the inside of the base (21) and the reaction cylinder (1).
5. An efficient integrated water purification device according to claim 1, characterized in that: The circular block (212) is rotatably arranged inside the connecting groove (213). The buffer groove ring (214) is movably arranged with the rotating rod (26). The chemical replenishing pipe (215) is internally communicated with the pipe groove (217) and the inside of the chemical storage shell (224). The three movable rods (219) are circularly and evenly distributed between the two discs (218). The hemispherical block (221) is attached to the upper end of the chassis (223).
6. An efficient integrated water purification device according to claim 2, characterized in that: The circular tube (31) is internally communicated with the pipe groove (217). The counterweight plug (32) is attached to the inner wall of the circular tube (31). The docking rod (35) is adapted to the circular hole (33). The spray head (38) is internally communicated with the spraying shell (37).
7. An efficient integrated water purification device according to claim 2, characterized in that: The sealing block (39) is attached to the inner wall of the circular groove (36). The limiting rod (310) passes through the upper side of the spraying shell (37). The gear ring (314) is meshed with the tooth groove (220) on the movable rod (219).
Citation Information
Patent Citations
Dosing device for water treatment
CN117049621A
Sewage treatment equipment
CN212770026U