A sewage treatment device for rapid disinfection
By combining the design of the reverse fan blade and bubble turn in the tank body, the problem of powdered chemicals is solved, and the rapid disinfection effect of the sewage treatment device is achieved.
Patent Information
- Application Number
- CN202510364279.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2045-03-26
AI Technical Summary
During the disinfection process of existing sewage treatment devices, powdered chemicals are prone to agglomeration, resulting in low mixing efficiency and affecting the disinfection effect.
The first and second blades in the tank body are rotated in reverse, combined with the gas storage tank and jet pipe system, bubbles are formed to turn the chemicals, and the uniform distribution of chemicals is achieved through the feeding tank and the electric swing rack.
It improves the mixing efficiency of chemical drugs and sewage, avoids drug agglomeration, and improves the sewage disinfection effect.
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Figure CN119898867B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of sewage treatment, and in particular to a sewage treatment device for rapid disinfection. Background Art
[0002] Wastewater treatment is the process of purifying wastewater so that it meets the water quality requirements for discharge into a water body or reuse.
[0003] When existing sewage treatment equipment disinfects sewage, it usually pours powdered chemicals into the sewage and mixes the two evenly through a mixing device. Disinfection is achieved by mixing the chemicals with the sewage. In this process, the existing mixing equipment usually stirs the sewage and chemicals in one direction, which affects the mixing efficiency of the chemicals and sewage. In addition, when some powdered chemicals are directly mixed with sewage, some of the powdered materials will cause agglomeration. During the stirring and mixing process, the agglomerated chemicals are mostly in the lower part of the sewage, resulting in different chemical contents at different heights, which in turn affects the efficiency of sewage disinfection. Summary of the Invention
[0004] In order to overcome the shortcomings mentioned in the above background technology, the present invention provides a sewage treatment device for rapid disinfection.
[0005] The technical solution is: a sewage treatment device for rapid disinfection, comprising a tank body, the tank body is provided with a feed pipe, the tank body is provided with a discharge pipe, the feed pipe and the discharge pipe are both provided with solenoid valves, the lower side of the tank body is provided with a support leg, the middle part of the tank body is rotatably connected to a hollow shaft, the hollow shaft is rotatably connected to a rotating rod, a driving member is installed on the tank body through a fixed frame, the driving member and the hollow shaft and the rotating rod are transmitted through a bevel gear set, the lower end of the hollow shaft is fixedly connected to a first fan blade for stirring the material in the tank body, and the lower end of the rotating rod is fixedly connected to a second fan blade for stirring the material in the tank body. The fan blades, the hollow shaft is fixedly connected to a scraper for scraping sewage adhered to the inner wall of the tank body through a connecting rod, the lower part of the tank body is connected to a gas storage tank, the gas storage tank is connected to an injection pipe located inside the tank body, the injection pipe is connected to equidistantly distributed nozzles, a piston is slidingly connected in the gas storage tank, the piston is rotatably connected to a reciprocating screw rod, a reciprocating threaded tube is provided on the reciprocating screw rod, which passes through the injection pipe and is fixed to the rotating rod, and the driving member drives the rotating rod through the bevel gear set to drive the reciprocating threaded tube to make the reciprocating screw rod and the piston move back and forth up and down to inject gas mixture into the tank body.
[0006] As an improvement to the above solution, the first fan blade and the second fan blade are inclined in opposite directions, so as to be used for convective mixing of materials in the tank body.
[0007] As an improvement to the above solution, a one-way valve is embedded in the bottom of the gas storage tank, and the piston is provided with one-way valves distributed equidistantly around the circumference.
[0008] As an improvement to the above solution, the injection ports of the equally spaced nozzles are set to be unidirectional.
[0009] As an improvement to the above scheme, it also includes a feeding tank, which is embedded in the tank body, and is located on the upper side of the scraper. The feeding tank is connected to a discharge frame, and a push plate is slidably connected to the feeding tank. The discharge frame is fixedly connected to an electric push rod through a connecting piece, and the telescopic end of the electric push rod passes through the feeding tank and is fixedly connected to the push plate. A discharge trough is provided on the side of the feeding tank away from the electric push rod, and an electric swing frame cooperating with the discharge trough is installed on a side wall of the feeding tank away from the electric push rod.
[0010] As an improvement to the above solution, the scraper is made of a smooth material.
[0011] As an improvement to the above solution, the swinging rod of the electric swinging frame is configured as an arc-shaped structure for swinging the material out through the discharge chute.
[0012] As an improvement to the above scheme, it also includes a quantitative frame, which is rotatably connected to the discharge frame through an axis rod, the axis rod is fixed with a spur gear, and an annular shield is rotatably connected in the feeding tank, the annular shield is provided with a discharge port that cooperates with the discharge trough, the outer ring surface of the annular shield is fixed with an arc-shaped rack that is slidably connected to the feeding tank, the arc-shaped rack is meshed with the spur gear, the annular shield is provided with a track groove, and the side of the push plate close to the electric push rod is fixed with a movable frame that is slidably connected to the feeding tank, and the movable frame is fixed with a guide block that slides with the track groove.
[0013] As an improvement to the above solution, the inner wall of the feeding tank is arranged in a stepped manner, and the annular baffle is rotatably connected to the side with the largest diameter in the feeding tank, and the annular baffle is smoothly connected to the side with the smallest diameter at the step of the feeding tank.
[0014] As an improvement to the above solution, the number of teeth of the spur gear is a multiple of the number of teeth of the arc-shaped rack, and the spur gear is a one-way gear.
[0015] The beneficial effects of the present invention are:
[0016] On the basis of the above-mentioned parts, the present invention cooperates with the tank body, the hollow shaft, the rotating rod, the driving member, the first fan blade and the second fan blade, so that the first fan blade rotates clockwise and the second fan blade rotates counterclockwise, stirring the sewage on the upper and lower sides of the tank body to mix and counteract each other, thereby preventing the sewage from rotating in only a single direction, resulting in some chemicals not being fully integrated with the sewage; through the cooperation of the rotating rod, the gas storage tank, the air injection pipe, the nozzle, the piston, the reciprocating screw and the reciprocating threaded pipe, the rotating rod rotates through the reciprocating threaded pipe and the reciprocating screw to move the piston and discharge the gas through the air injection pipe and the nozzle, the gas and the sewage cooperate to form bubbles and float upward, causing the chemicals to flip upward and accelerate the efficiency of sewage disinfection;
[0017] Through the feeding tank, unloading frame, push plate, electric push rod, electric swing frame, quantitative frame, spur gear, annular baffle, arc rack, mobile frame and guide block, the electric push rod drives the push plate to move and push the powdered chemicals to cooperate with the electric swing frame to swing the chemicals into the tank body through the discharge port and the discharge trough. The chemicals will be thrown out and scattered everywhere and quickly mixed with the sewage flowing in the tank body to avoid the powdered chemicals being directly sprinkled into the sewage, causing some powdered chemicals to agglomerate. The mobile frame drives the guide block to move in the track groove to rotate the annular baffle to open or close the discharge trough to avoid the discharge trough being in an open state when no chemicals are thrown out. When the sewage is mixed, part of the sewage enters the feeding tank, which causes the powdered chemicals in the feeding tank to agglomerate, affecting the disinfection efficiency of the sewage. The arc rack and spur gear are used to achieve quantitative feeding. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0019] Figure 2 It is a schematic diagram of the cross-sectional three-dimensional structure of the tank body of the present invention.
[0020] Figure 3 It is a schematic diagram of the three-dimensional structure of the feeding tank, unloading frame, push plate, electric push rod and electric swing frame of the present invention.
[0021] Figure 4 It is a schematic diagram of the three-dimensional structure of the quantitative frame and spur gear of the present invention.
[0022] Figure 5 It is a schematic diagram of the three-dimensional structure of the annular shield, arc-shaped rack, movable frame and guide block of the present invention.
[0023] Markings in the figure are: 1-tank body, 2-support leg, 3-hollow shaft, 4-rotating rod, 5-fixed frame, 6-driving member, 7-first fan blade, 8-second fan blade, 9-scraper, 10-gas storage tank, 11-injection pipe, 12-nozzle, 13-piston, 14-reciprocating screw, 15-reciprocating threaded tube, 16-feeding tank, 17-unloading frame, 18-push plate, 19-electric push rod, 20-electric swing frame, 21-quantitative frame, 22-spur gear, 23-annular shield, 24-arc rack, 25-track groove, 26-moving frame, 27-guide block. DETAILED DESCRIPTION
[0024] The technical solution of the present invention will be further described below with reference to the accompanying drawings. Example
[0025] A sewage treatment device for rapid disinfection, such as Figure 1-Figure 2As shown, it includes a tank body 1, a feed pipe is embedded in the eccentric position of the top of the tank body 1, a discharge pipe is embedded in the lower side of the tank body 1, and solenoid valves are provided in the feed pipe and the discharge pipe. A support leg 2 is provided on the lower side of the tank body 1, and a hollow shaft 3 is rotatably connected to the center of the top of the tank body 1, and a rotating rod 4 is rotatably connected to the hollow shaft 3. A driving member 6 (the driving member 6 adopts a servo motor) is installed at the eccentric position of the top of the tank body 1 through a fixing frame 5. The driving member 6 and the hollow shaft 3 and the rotating rod 4 are driven by a bevel gear set. The hollow shaft 3 and the rotating rod 4 rotate in opposite directions. The lower end of the hollow shaft 3 is fixed with a first A fan blade 7, the lower end of the rotating rod 4 is fixedly connected to a second fan blade 8 for stirring the sewage in the tank body 1, the fan blades of the first fan blade 7 and the second fan blade 8 are tilted in opposite directions, and the first fan blade 7 and the second fan blade 8 rotate in opposite directions, so that the sewage flow directions on the upper and lower sides of the tank body 1 are divided into clockwise flow and counterclockwise flow, so that the sewage on the upper and lower sides of the tank body 1 are hedged and mixed, the hollow shaft 3 is fixedly connected to a scraper 9 through a connecting rod, and the scraper 9 is made of a smooth material. The scraper 9 is mainly used to scrape impurities adhering to the inner wall of the tank body 1 to prevent adhesion. The bottom end of the tank body 1 is connected to an air storage tank 10, and a one-way valve is embedded in the bottom of the air storage tank 10 The top of the gas storage tank 10 is connected to a jet pipe 11, which is connected to equidistantly distributed nozzles 12. The jet ports of the equidistantly distributed nozzles 12 are set to be one-way for one-way outflow of air to prevent backflow. A piston 13 is slidingly connected inside the gas storage tank 10. The piston 13 is provided with three circumferentially equidistantly distributed one-way valves. The piston 13 moves downward to transfer the gas on its lower side to the upper side. The piston 13 moves upward to discharge the gas on its upper side through the jet pipe 11 and the nozzle 12. The discharged gas combines with the sewage to form bubbles. The bubbles will float upward due to their buoyancy. In the process of floating upward, the bubbles carry the chemical on the lower side. The chemical drugs are flipped upward, so as to achieve the purpose of fully mixing the chemical drugs with the sewage and accelerate the effect of sewage disinfection. The piston 13 is connected to the reciprocating screw 14 when it rotates. The lower end of the rotating rod 4 is fixedly connected to the reciprocating threaded tube 15. The upper end of the reciprocating screw 14 passes through the jet pipe 11 and is located in the reciprocating threaded tube 15. The reciprocating screw 14 is threadedly matched with the reciprocating threaded tube 15. The driving member 6 drives the rotating rod 4 through the bevel gear set to drive the reciprocating threaded tube 15 to rotate. The rotation of the reciprocating threaded tube 15 cooperates with the reciprocating screw 14 to make it move up and down, and drive the piston 13 to move up and down to inject gas mixed materials into the tank body 1.
[0026] When quickly disinfecting sewage, the operator opens the solenoid valve of the feed pipe, and adds sewage into the tank body 1 through the feed pipe, and starts the driving member 6. The driving member 6 rotates the hollow shaft 3 clockwise and the rotating rod 4 counterclockwise through the bevel gear set. The clockwise rotation of the hollow shaft 3 causes the first blade 7 to rotate clockwise, and the counterclockwise rotation of the rotating rod 4 drives the second blade 8 to rotate counterclockwise. The clockwise rotation of the first blade 7 and the counterclockwise rotation of the second blade 8 cooperate to make the sewage on the upper and lower sides of the tank body 1 flush and mix, so as to avoid the sewage rotating in only one direction, resulting in some chemicals being unable to fully merge with the sewage. The rotation of the hollow shaft 3 causes the scraper 9 to move circumferentially through the connecting rod, and the scraper The plate 9 moves circumferentially to scrape off impurities adhered to the inner wall of the tank body 1, and the rotation of the rotating rod 4 drives the reciprocating threaded tube 15 to rotate. The rotation of the reciprocating threaded tube 15 is matched with the thread of the reciprocating screw 14, so that the piston 13 moves downward and upward. The piston 13 moves downward to move the gas in the gas storage tank 10 on the lower side into the upper side of the piston 13. The piston 13 moves upward to discharge the gas on the upper side through the nozzle 12 on the injection pipe 11. The gas discharged from the nozzle 12 cooperates with the sewage in the tank body 1 to form bubbles of the discharged gas. Because the bubbles have a certain buoyancy, the bubbles will float upward, thereby achieving the purpose of flipping the chemicals upward, avoiding the accumulation of chemicals on the lower side and affecting the mixing with the sewage, thereby accelerating the efficiency of sewage disinfection. Example
[0027] On the basis of Example 1, Figure 2-Figure 5 As shown, it also includes a feeding tank 16, which is embedded in the upper side of the side wall of the tank body 1, and the feeding tank 16 is located on the upper side of the scraper 9. The upper right side of the feeding tank 16 is connected to a discharge frame 17, and a push plate 18 is slidably connected to the feeding tank 16. The discharge frame 17 is fixedly connected to an electric push rod 19 through a connecting piece. The telescopic end of the electric push rod 19 passes through the feeding tank 16 and is fixedly connected to the push plate 18. The feeding tank 16 is provided with a discharge trough located on the inner side of the tank body 1, and an electric swinging frame 20 that cooperates with the discharge trough is installed on the left wall inside the feeding tank 16. The swinging rod of the electric swinging frame 20 is set to an arc structure for swinging chemicals out through the discharge trough.
[0028] It also includes a quantitative frame 21, which is rotatably connected to the blanking frame 17 through a shaft, and a quantitative groove is provided at the lower part of the quantitative frame 21. The left end of the shaft is fixed with a spur gear 22 (the spur gear 22 is set as a one-way gear). The right diameter of the feeding tank 16 is smaller than the left diameter thereof. The cross section of the inner wall of the feeding tank 16 is stepped. The left side of the feeding tank 16 is rotatably connected to an annular shield 23. The inner diameter of the annular shield 23 is equal to the right diameter of the feeding tank 16, and the inner annular surface of the annular shield 23 is smoothly connected to the right side of the feeding tank 16. The annular shield 23 is provided with a discharge trough. The outer ring surface of the annular baffle 23 is fixed with an arcuate rack 24 which is slidably connected to the feeding tank 16. The number of teeth of the spur gear 22 is a multiple of the number of teeth of the arcuate rack 24 (the ratio is 1:0.5). The arcuate rack 24 is meshed with the spur gear 22. The outer ring surface of the annular baffle 23 is provided with a track groove 25. The track groove 25 surrounds the annular baffle 23 by 180° and is located at the rear of the annular baffle 23. The lower side of the right side of the push plate 18 is fixed with a movable frame 26 which is limitedly slidably connected to the feeding tank 16. The movable frame 26 is fixed with a guide block 27 which slides with the track groove 25.
[0029] The chemicals to be added are poured into the feeding frame 17, and then the operator starts the electric swing frame 20 and the electric push rod 19. The electric push rod 19 works to push the push plate 18 to the left. The push plate 18 moves to the left and drives the guide block 27 to move to the left through the moving frame 26. The guide block 27 moves to the left and cooperates with the track groove 25 to make the annular shield plate 23 rotate 180 degrees forward in the circumferential direction, so that the discharge port on the annular shield plate 23 coincides with the discharge trough on the feeding tank 16. The push plate 18 Move leftward to push the chemicals to the left, and cooperate with the electric swing frame 20 to swing the chemicals into the tank body 1 through the discharge port and the discharge chute. The annular shield 23 rotates forward 180 degrees to make the arc rack 24 move 180 degrees circumferentially (in this process, the arc rack 24 rotates circumferentially to mesh with the spur gear 22, and the arc rack 24 continues to move circumferentially to mesh with the spur gear 22 to rotate. The rotation of the spur gear 22 can rotate the quantitative frame 21 through the shaft. When the arc rack 24 rotates 180 degrees circumferentially At this time, the quantitative rack 21 rotates 180 degrees, causing the quantitative slot on the quantitative rack 21 to rotate to the upper side. At this time, the chemicals in the unloading frame 17 fall downward into the quantitative slot of the quantitative rack 21). When the electric push rod 19 causes the push plate 18 to move to the right, the annular shield 23 rotates backward 180 degrees, driving the arc rack 24 on it to move circumferentially. The annular shield 23 rotates backward to make the discharge port on it misaligned with the discharge chute to avoid that when no chemicals are thrown out, the discharge chute is in an open state, and part of the sewage enters the feeding tank 16 when mixing. This causes the powdered chemicals in the feeding tank 16 to agglomerate, affecting the effect of sewage disinfection. At this time, the arc rack 24 moves circumferentially to drive the spur gear 22 to rotate, and the spur gear 22 rotates to drive the quantitative rack 21 to make the chemicals in the quantitative slot on it move 180 degrees circumferentially into the feeding tank 16. At this time, the push plate 18 is located on the right side of the quantitative rack 21. The push plate 18 moves to the left again to achieve the addition of chemicals to the tank body 1.
[0030] On the basis of the above, the electric swing frame 20 works to swing the swing frame on it toward the chemicals. During the process of swinging the chemicals outward, the first fan blade 7 rotates to make the sewage on the upper side of the tank body 1 flow. The chemicals thrown outward encounter the flowing sewage, which can promote the rapid mixing of the chemicals and the sewage, avoiding the powdered chemicals from being directly sprinkled into the sewage, causing some powdered chemicals to agglomerate, and the chemicals being thrown out will cause them to scatter everywhere, preventing the chemicals from piling up.
[0031] It should be understood that this embodiment is only used to illustrate the present invention and is not used to limit the scope of the present invention. In addition, it should be understood that after reading the content taught by the present invention, those skilled in the art can make various changes or modifications to the present invention, and these equivalent forms fall equally within the scope limited by the appended claims of the application.
Claims
1. A sewage treatment device for rapid disinfection, characterized in that: The invention comprises a tank body (1), wherein the tank body (1) is provided with a feed pipe, the tank body (1) is provided with a discharge pipe, the feed pipe and the discharge pipe are both provided with a solenoid valve, the lower side of the tank body (1) is provided with a support leg (2), the middle part of the tank body (1) is rotatably connected to a hollow shaft (3), the hollow shaft (3) is rotatably connected to a rotating rod (4), a driving member (6) is installed on the tank body (1) through a fixing frame (5), the driving member (6) and the hollow shaft (3) and the rotating rod (4) are driven by a bevel gear set, the lower end of the hollow shaft (3) is fixedly connected to a first fan blade (7) for stirring the material in the tank body (1), the lower end of the rotating rod (4) is fixedly connected to a first fan blade (7) for stirring the material in the tank body (1), and the lower end of the rotating rod (4) is fixedly connected to a first fan blade (7) for stirring the material in the tank body (1). The second fan blade (8) for material stirring is fixedly connected to the hollow shaft (3) through a connecting rod with a scraper (9) for scraping the sewage adhered to the inner wall of the tank body (1). The lower part of the tank body (1) is connected to a gas storage tank (10), and the gas storage tank (10) is connected to an injection pipe (11) located on the inner side of the tank body (1). The injection pipe (11) is connected to nozzles (12) distributed at equal intervals. A piston (13) is connected to the gas storage tank (10) in a limited sliding manner. The piston (13) is rotatably connected to a reciprocating screw rod (14). A reciprocating threaded tube (15) is provided on the reciprocating screw rod (14) that passes through the injection pipe (11) and is fixed to the rotating rod (4). The driving member (6) drives the rotating rod (4) through the bevel gear group. The rotating rod (4) drives the reciprocating threaded tube (15) to make the reciprocating screw rod (14) and the piston (13) move up and down to inject the gas mixture into the tank body (1), and also includes a feeding tank (16), the feeding tank (16) is embedded in the tank body (1), the feeding tank (16) is located on the upper side of the scraper (9), the feeding tank (16) is connected to a blanking frame (17), a push plate (18) is slidably connected in the feeding tank (16), the blanking frame (17) is fixedly connected to an electric push rod (19) through a connecting piece, the telescopic end of the electric push rod (19) passes through the feeding tank (16) and is fixedly connected to the push plate (18), and the feeding tank (16) is away from the side of the electric push rod (19). A discharge trough is provided, and an electric swing frame (20) cooperating with the discharge trough is installed on a side wall of the feeding tank (16) away from the electric push rod (19), and also includes a quantitative frame (21), the quantitative frame (21) is rotatably connected to the discharge frame (17) through a shaft, the shaft is fixedly connected to a spur gear (22), an annular shield (23) is rotatably connected in the feeding tank (16), the annular shield (23) is provided with a discharge port cooperating with the discharge trough, the outer ring surface of the annular shield (23) is fixedly connected to an arc rack (24) slidably connected to the feeding tank (16), the arc rack (24) is meshed with the spur gear (22), and the annular shield (23) is provided with a track groove (25).A movable frame (26) is fixedly connected to a side of the push plate (18) close to the electric push rod (19) and is slidably connected to the feeding tank (16). The movable frame (26) is fixedly connected to a guide block (27) that is slidably matched with the track groove (25).
2. A sewage treatment device for rapid disinfection according to claim 1, characterized in that: The first fan blade (7) and the second fan blade (8) have opposite inclination directions and are used for convective mixing of materials in the tank body (1).
3. A sewage treatment device for rapid disinfection according to claim 1, characterized in that: A one-way valve is embedded in the bottom of the gas storage tank (10), and the piston (13) is provided with one-way valves distributed equidistantly in the circumferential direction.
4. A sewage treatment device for rapid disinfection according to claim 3, characterized in that: The injection ports of the equally spaced nozzles (12) are configured to be unidirectional.
5. A sewage treatment device for rapid disinfection according to claim 1, characterized in that: The scraper (9) is made of a smooth material.
6. A sewage treatment device for rapid disinfection according to claim 1, characterized in that: The swinging rod of the electric swinging frame (20) is configured as an arc-shaped structure, and is used to swing the material out through the discharge chute.
7. A sewage treatment device for rapid disinfection according to claim 1, characterized in that: The inner wall of the feeding tank (16) is arranged in a stepped manner, and the annular shielding plate (23) is rotatably connected to the side of the feeding tank (16) with the largest inner diameter, and the annular shielding plate (23) is smoothly connected to the side of the step of the feeding tank (16) with the smallest diameter.
8. A sewage treatment device for rapid disinfection according to claim 1, characterized in that: The number of teeth of the spur gear (22) is a multiple of the number of teeth of the arc-shaped rack (24), and the spur gear (22) is a one-way gear.
Citation Information
Patent Citations
Road sewage treatment equipment for ecological corridor
CN112266102A
Sewage treatment agent spraying device for sewage treatment
CN220900705U