Efficient ozone reactor
By designing a combination of tower body, grid, ozone distribution system and filtration mechanism, the problem of low ozone utilization rate in ozone reactor was solved, and the uniform distribution and efficient reaction of ozone in water were achieved, thus improving the sterilization effect.
Patent Information
- Application Number
- CN202423191177.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-23
AI Technical Summary
Existing ozone reactors have low ozone utilization rates, with some ozone escaping or decomposing before fully reacting with pollutants, and irregular water flow causing ozone to accumulate and be discharged.
A high-efficiency ozone reactor was designed, comprising a tower, a grid, an ozone distribution system, and a filtration mechanism. Through components such as a bottom aeration device, a diversion mechanism, and a forced flow machine, uniform ozone distribution and efficient reaction are achieved.
It improves the uniform distribution and reaction efficiency of ozone in water, enhances the bactericidal effect, ensures the full utilization of ozone, and reduces the escape of unreacted ozone.
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Figure CN223620217U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wastewater treatment technology, specifically to a high-efficiency ozone reactor. Background Technology
[0002] An ozone reactor is a device used for ozone oxidation reactions. Ozone has strong oxidizing properties and is widely used in various fields such as water treatment and waste gas treatment. The main function of a high-efficiency ozone reactor is to provide an efficient reaction site for the reaction between ozone and target pollutants, allowing ozone to fully contact the substances being treated and undergo an oxidation reaction, thereby achieving the purpose of removing pollutants and disinfection.
[0003] Although high-efficiency ozone reactors employ various designs to improve the contact efficiency between ozone and reactants, the utilization rate of ozone still needs improvement. Some ozone may escape into the air or decompose before it has a chance to fully react with pollutants. On the one hand, ozone accumulates and is rapidly released from the water; on the other hand, irregular water flow within the water can also cause ozone to accumulate. Utility Model Content
[0004] To solve the above-mentioned technical problems, this utility model proposes an ozone high-efficiency reactor.
[0005] The technical solution of this utility model is achieved as follows: a high-efficiency ozone reactor, comprising:
[0006] The tower body has a wastewater inlet pipe that runs through its bottom, allowing wastewater to flow upwards.
[0007] A grid is fixedly connected to the middle of the inner cavity of the tower body, and a bottom aeration device is provided at the bottom of the tower body and around the grid. A partition is provided above the inner cavity of the grid.
[0008] An ozone equalization system is provided, which is installed through the top of the tower body. The ozone equalization system includes a diversion mechanism, on which multiple ozone generating systems are installed.
[0009] A filtration mechanism is provided in the middle of the tower body, and the grid is fixedly connected to the inner wall of the filtration mechanism.
[0010] In use, by setting up the wastewater inlet pipe, the sewage generated by the wastewater inlet pipe flows into the tower body from bottom to top. At this time, the impurities in the sewage fall to the bottom of the tower body under the action of gravity. The bottom aeration device is set at the bottom of the tower body. The bottom aeration device can aerate the impurities and sewage at the same time, and can make the water flow upward from the outlet of the wastewater inlet pipe and form a state of guiding the flow to all sides above, thus forming a circulating flow state.
[0011] The bar screen can isolate large impurities, causing them to accumulate at the bottom. Of course, a sludge pump is installed inside the tower to remove sludge. The baffle prevents sludge from rising, ensuring smooth water circulation. In addition, it is best for the baffle to be located 50 centimeters below the water surface. The baffle is actually a filter material used to prevent impurities in the water flow from passing through.
[0012] The diversion mechanism is used to make the water above flow to all directions. Specifically, when the diversion tower rotates, it can drive the water to flow to all directions. This, together with the water flowing upwards below, can form an internal circulation state. The ozone generation system diverts ozone generated by the external ozone generator into the ozone input pipe. The ozone input pipe is connected to an ultrasonic generator. Under the action of the ultrasonic generator, when the ozone flowing through the aeration balloon overflows from the aeration balloon, it can break the bubbles into smaller ones. At this time, with the action of water flow, the ozone can be evenly distributed in the water, thereby improving the ozone sterilization speed.
[0013] Furthermore, the tower body includes a tower body, on which a pipe opening is provided for installing a wastewater inlet pipe, and a top cover protective cover is fixedly connected to the top of the tower body.
[0014] The top cover is used to protect the ozone equalization system. When used outdoors, the ozone equalization system can be protected by adding a top cover.
[0015] Furthermore, the diversion mechanism includes a drive motor, the output end of which is interference-connected to the top of the tower body, and the output end of the drive motor is fixedly connected to a diversion tower.
[0016] Furthermore, the ozone generating system includes a diversion tower, the bottom of which is connected to an ozone input pipe. The ozone input pipe passes through the tower body and the diversion tower and extends below them. A rotary joint pipe is installed inside the ozone input pipe, and an aeration balloon is fixedly connected to the bottom of the rotary joint pipe.
[0017] Furthermore, the diversion tower includes a diversion sleeve, the bottom of which is provided with multiple ball-receiving grooves, and the diversion sleeve is provided with multiple connecting ports that connect the inner cavity of the diversion sleeve to the ball-receiving grooves. A rotating guide plate is rotatably provided on the inner wall of the diversion sleeve, and a fixed circular plate is fixedly connected to the top of the rotating guide plate. The fixed circular plate is fixedly connected to the output end of the drive motor.
[0018] By setting up the diversion tower, when the fixed circular plate causes multiple rotating guide plates to rotate, the rotating guide plates can drive the water in the middle to flow in all directions. This increases the flow rate of the water and also allows the water generated by the rotating guide plates to flow towards the connecting port. Through the connecting port, the water flow impact force is applied to the aeration balloon, which can rotate the aeration balloon, allowing the ozone to be dispersed quickly and farther, and the rainwater to react more fully, thus making the ozone reaction more efficient.
[0019] Furthermore, the filtration mechanism includes a packing base with multiple feed ports running through it. Each feed port is a cavity that runs vertically through the center and is wider at the middle and narrower at both ends. A filter element is fitted inside the feed port, and a forced flow guide is provided at the bottom of the feed port.
[0020] The forced flow pump can draw water downwards and discharge the reacted water from the tower. When the forced flow pump generates negative pressure, the water flow velocity above increases, allowing the water above the packing base to move downwards. This enables faster filtration under the action of the filter element, thus improving the internal water circulation.
[0021] This utility model has the following beneficial effects:
[0022] 1. During use, the wastewater inlet pipe is designed so that the wastewater generated by the wastewater inlet pipe flows into the tower body from bottom to top. At this time, the impurities in the wastewater fall to the bottom of the tower body under the action of gravity. The bottom aeration device is installed at the bottom of the tower body. The bottom aeration device can aerate the impurities and wastewater at the same time, and can make the water flow upward from the outlet of the wastewater inlet pipe and form a state of guiding the flow to all sides above, thus forming a circulating flow state.
[0023] 2. The diversion mechanism is used to make the water above flow to all directions. Specifically, when the diversion tower rotates, it can drive the water to flow to all directions. This, together with the water flowing upwards below, can form an internal circulation state. The ozone generation system diverts the ozone generated by the external ozone generator into the ozone input pipe. The ozone input pipe is connected to an ultrasonic generator. Under the action of the ultrasonic generator, when the ozone flowing through the aeration balloon overflows from the aeration balloon, it can break the bubbles into smaller ones. At this time, with the action of water flow, the ozone can be evenly distributed in the water, thereby improving the ozone sterilization speed.
[0024] 3. By setting up the diversion tower, when the fixed circular plate causes multiple rotating guide plates to rotate, the rotating guide plates can drive the water in the middle to flow in all directions. In this way, the flow velocity of the water is increased, and the water flow generated by the rotating guide plates can flow to the connecting port. Through the connecting port, the water flow impact force is applied to the aeration balloon, so that the aeration balloon can rotate, allowing the ozone to be dispersed quickly and farther, and the rainwater to react more fully, thus making the ozone reaction more efficient.
[0025] 4. The forced flow machine can draw water downwards and discharge the reacted water from the tower. When the forced flow machine generates negative pressure, the water flow velocity above increases, allowing the water above the packing base to move downwards. This enables faster filtration under the action of the filter element, thus improving the internal water circulation. Attached Figure Description
[0026] Figure 1 This is a front sectional view of the present invention;
[0027] Figure 2 This is a schematic diagram of the diversion mechanism of this utility model;
[0028] Figure 3 This is a schematic diagram of the popping balloon of this utility model;
[0029] Figure 4 This is a schematic diagram of the diversion tower of this utility model.
[0030] 1. Tower body; 2. Top cover protective cover; 3. Bottom aeration device; 4. Grille; 5. Wastewater inlet pipe; 6. Packing base; 7. Inlet; 8. Filter element; 9. Forced flow guide; 10. Drive motor; 11. Ultrasonic generator; 12. Diverting tower; 121. Diverting sleeve; 122. Ball tank; 123. Pipe port; 124. Rotating guide plate; 125. Connecting port; 126. Fixed circular plate; 13. Ozone input pipe; 14. Rotary joint pipe; 15. Aeration ball. Detailed Implementation
[0031] The technical solutions in the embodiments of this utility model will be clearly and completely described below. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0032] Reference Figures 1 to 4 The ozone high-efficiency reactor shown includes:
[0033] The tower body has a wastewater inlet pipe 5 installed at the bottom to guide wastewater upwards;
[0034] The grid 4 is fixedly connected to the middle of the inner cavity of the tower body, and a bottom aeration device 3 is provided at the bottom of the tower body and around the grid 4. A partition is provided above the inner cavity of the grid 4.
[0035] An ozone equalization system is installed throughout the top of the tower. The ozone equalization system includes a diversion mechanism, on which multiple ozone generating systems are installed.
[0036] The filter mechanism is located in the middle of the tower body, and the grid 4 is fixedly connected to the inner wall of the filter mechanism.
[0037] In use, by setting up the wastewater inlet pipe 5, the sewage generated by the wastewater inlet pipe 5 flows into the tower body 1 from bottom to top. At this time, the impurities in the sewage fall to the bottom of the tower body 1 under the action of gravity. The bottom aeration device 3 is set at the bottom of the tower body 1. The bottom aeration device 3 can aerate the impurities and sewage at the same time, and can make the water flow upward from the outlet of the wastewater inlet pipe 5 and form a state of guiding the water to the surroundings above, thereby forming a circulating flow state.
[0038] The grid 4 can isolate large impurities, causing them to accumulate at the bottom. Of course, the tower body 1 is equipped with a sludge pump to remove sludge. The baffle prevents sludge from rising and ensures smooth water circulation. In addition, it is best for the baffle to be located 50 centimeters below the water surface. The baffle is actually a filter material used to prevent impurities in the water flow from passing through.
[0039] The diversion mechanism is used to make the water above flow to all directions. Specifically, when the diversion tower 12 rotates, it can drive the water to flow to all directions. This, together with the water flowing upwards, can form an internal circulation state. The ozone generating system diverts the ozone generated by the external ozone generator into the ozone input pipe 13. The ozone input pipe 13 is connected to the ultrasonic generator 11. Under the action of the ultrasonic generator 11, when the ozone flowing through the aeration balloon 15 overflows from the aeration balloon 15, it can break the bubbles into smaller ones. At this time, with the action of water flow, the ozone can be evenly distributed in the water, thereby improving the ozone sterilization speed.
[0040] It is important to understand that the aeration balloon 15 is equipped with air holes, and the ultrasonic generator 11 can ensure that when the gas is discharged, the ozone can be evenly dispersed in the water in the form of small bubbles.
[0041] The tower body includes a tower body 1, which is provided with a pipe opening for installing a wastewater inlet pipe 5. A top cover protective cover 2 is fixedly connected to the top of the tower body 1.
[0042] The top cover 2 is used to protect the ozone equalization system. When used outdoors, the ozone equalization system can be protected by adding the top cover 2.
[0043] The diversion mechanism includes a drive motor 10, the output end of which is interference-connected to the top of the tower body 1, and the output end of the drive motor 10 is fixedly connected to the diversion tower 12.
[0044] The ozone generation system includes a diversion tower 12, with an ozone input pipe 13 connected to the bottom of the diversion tower 12. The ozone input pipe 13 passes through the tower body 1 and the diversion tower 12 and extends below them. A rotary joint pipe 14 is installed inside the ozone input pipe 13, and an oscillation balloon 15 is fixedly connected to the bottom of the rotary joint pipe 14.
[0045] The diversion tower 12 includes a diversion sleeve 121. The bottom of the diversion sleeve 121 is provided with multiple ball-receiving grooves 122. The diversion sleeve 121 is provided with multiple connecting ports 125, which connect the inner cavity of the diversion sleeve 121 and the ball-receiving grooves 122. A rotating guide plate 124 is rotatably provided on the inner wall of the diversion sleeve 121. A fixed circular plate 126 is fixedly connected to the top of the rotating guide plate 124. The fixed circular plate 126 is fixedly connected to the output end of the drive motor 10.
[0046] By configuring the diversion tower 12, when the fixed circular plate 126 causes multiple rotating guide plates 124 to rotate, the rotating guide plates 124 can drive the water in the middle to flow to the surrounding areas. In this way, the flow velocity of the water is increased, and the water flow generated by the rotating guide plates 124 can also flow to the connecting port 125. The water flow impact force is applied to the aeration balloon 15 through the connecting port 125, so that the aeration balloon 15 can rotate, allowing the ozone to be dispersed quickly and further, and the rainwater to react more fully, thus making the ozone reaction more efficient.
[0047] The filtration mechanism includes a packing base 6, with multiple feed inlets 7 running through the packing base 6. Each feed inlet 7 is a cavity that runs vertically through the body and is larger in the middle and smaller at both ends. A filter element 8 is fitted inside the feed inlet 7, and a forced flow machine 9 is installed at the bottom of the feed inlet 7.
[0048] The forced flow pump 9 can draw water downwards and discharge the reacted water from the tower body 1. When the forced flow pump 9 generates negative pressure, the water flow velocity above increases, so that the water above the packing base 6 can move downwards. Under the action of the filter element 8, filtration is faster, which can improve the internal water circulation.
[0049] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A high-efficiency ozone reactor, characterized in that, include: The tower body has a wastewater inlet pipe (5) that is installed at the bottom of the tower body to guide wastewater upwards; A grid (4) is fixedly connected to the middle of the inner cavity of the tower body, and a bottom aeration device (3) is provided at the bottom of the tower body and around the grid (4). A partition is provided above the inner cavity of the grid (4). An ozone equalization system is provided, which is installed through the top of the tower body. The ozone equalization system includes a diversion mechanism, on which multiple ozone generating systems are installed. The filter mechanism is located in the middle of the tower body, and the grille (4) is fixedly connected to the inner wall of the filter mechanism.
2. The ozone high-efficiency reactor according to claim 1, characterized in that, The tower body includes a tower body (1), on which a pipe opening is provided for installing a wastewater inlet pipe (5), and a top cover protective cover (2) is fixedly connected to the top of the tower body (1).
3. The ozone high-efficiency reactor according to claim 2, characterized in that, The diversion mechanism includes a drive motor (10), the output end of which is interference-connected to the top of the tower body (1), and the output end of the drive motor (10) is fixedly connected to a diversion tower (12).
4. The ozone high-efficiency reactor according to claim 3, characterized in that, The ozone generating system includes a diversion tower (12), the bottom of which is connected to an ozone input pipe (13). The ozone input pipe (13) passes through the tower body (1) and the diversion tower (12) and extends below them. A rotary joint pipe (14) is provided inside the ozone input pipe (13), and an oscillation balloon (15) is fixedly connected to the bottom of the rotary joint pipe (14).
5. The ozone high-efficiency reactor according to claim 4, characterized in that, The diversion tower (12) includes a diversion sleeve (121), the bottom of which is provided with a plurality of ball-filling grooves (122), and the diversion sleeve (121) is provided with a plurality of connecting ports (125), which connect the inner cavity of the diversion sleeve (121) and the ball-filling grooves (122). A rotating guide plate (124) is rotatably provided on the inner wall of the diversion sleeve (121), and a fixed circular plate (126) is fixedly connected to the top of the rotating guide plate (124), which is fixedly connected to the output end of the drive motor (10).
6. The ozone high-efficiency reactor according to claim 5, characterized in that, The filtration mechanism includes a packing base (6), on which multiple inlets (7) are provided. Each inlet (7) is a cavity that runs vertically through the center and is larger at the middle and smaller at both ends. A filter element (8) is fitted inside the inlet (7), and a forced flow machine (9) is provided at the bottom of the inlet (7).